Background of the Invention
Field of the Invention
[0001] The present invention relates to the field of gas sorbents, more precisely of metallic
gas sorbents used at room temperature for gas purification and for improvement of
vacuum in sealed devices and pumped down chambers.
Description of related art
[0002] Modem metallic sorbents, also called getters, can be divided conventionally according
to their chemical nature into two groups: getters, containing mainly alkaline-earth
metals, and getters based on transition metals. The sorption capacity of the former
is in average by three orders of magnitude higher than of the latter [ J.J.B. Fransen,
H.J.R. Perdijk. Vacuum, 10 (1960)199; B. Ferrario. Vacuum, 47 (1996) 363; P.della
Porta. Vacuum, 47(1996)771], but it turned out that it is technically very difficult
to achieve high rates of chemical pumping with the help of active metals like calcium,
strontium or barium in spite of the fact that the sticking coefficient of these metals
for most important gaseous species is by many times higher than that of the transition
metals. The reason for this is the following.
[0003] It is known that the sorption rate with which gases are sorbed by solids under otherwise
equal conditions is proportional to the specific surface area of the solid. Therefore
the developments in the field of getter technologies always followed the path of creating
planar materials with high specific surface area, and all commercially realized methods
of production of effective getters fit in one and the same scheme: first a starting
material is crushed to a high degree of dispersion and then the particles obtained
are again bound into an integrated but porous structure with the help of cohesive
forces stimulating diffusive "gluing" of the particles in the points of contact.
[0004] Powder compressing and sintering [ N.P. Reutova et. al. US 6,322,720], screen printing
[A. Corazza et. al. WO 98/03987], spraying [S. Carella et. al. WO 95/23425], electrophoresis
[E. Giorgi. US 5,242,559], sputtering [V. Palmieri et. al. US 5,306,406; C. Benvenuti
et. al. Vacuum, 60(2001) 57], etc. can be considered as examples for this kind of
technologies.
[0005] All these methods showed themselves to be of advantage in the case of transitional
metals but they are absolutely inapplicable for alkaline-earth metals due to the extremely
high reactivity of these metals in the dispersed state. Among the previous attempts
to overcome the problem of chemical reactivity of alkaline-earth metals and to make
use of them as gas sorbents, three cost-effective versions were most significant.
[0006] Two of them refer to rather specific cases: to gettering of residual gases in Cathode
Ray Tubes by barium films, and to maintaining of negative pressure in Vacuum Insulating
Panels with the help of powders of barium-lithium alloys. In the third attempt a general
solution of the problem of dispersion of active alloys under conditions of their high
purity is claimed [K. Chuntonov. WO 2004/082873].
[0007] Ba-films deposited in a vacuum upon heating a powdered mixture of Al
4Ba and Ni [P. della Porta.US 5,118,988; D. Martelli et. al. US 6,306,314] are in many
respects an ideal gas sorbent but they need the support of a large free surface area
which contradicts the general trend to miniaturization of electronic devices.
[0008] The second product, called Combogetter™ containing powder pills of the composition
BaLi
4 as gas sorbent was apparently developed directly for low-vacuum applications [Manini
et. al. US 5,600,957]. Independent of the scale of usage of this product, from the
technical view point it is not a breakthrough. Two more patents, US 5,312,606 and
US 5,312,607 claiming the usage of barium alloys as getter materials for vacuum vessels
are also connected with this topic. In the case of the latter two patents we deal
with a purely legal act, which is not supported by technical innovations.
[0009] In fact, the procedure of crushing an ingot with a pestle and a mortar described
in these two patents can not be considered a new technology, and the ability of barium-containing
alloys to bind many gases including atmospheric air is well-known [see G. Rocktäschel
et al. Z. anorg. allg. Chem., 316 (1962) 231; G. Bruzzone. J. Less-Comm. Met., 25
(1971361; 7 (1964)368; 11 (1966) 249; M. L. Fornasini et al. Rev. Chim. Miner., 16
(1979)458; W. Klemm u.a. Z. anorg. allg. Chem., 255 (1947) 2; R. Konetzki u.a. Z.
Metallkd., 84 (1993) 569]. We also mention that barium itself and even more so its
alloys with Pb, Tl, Cd, Hg etc. proposed in US 5,312,606 and US 5,312,607 are rather
toxic.
[0010] A possibility to produce high purity powders or cast shot of chemically active materials
appeared recently with the development of a new method of quenching melt droplets
in liquid inert gas [WO 2004/082873]. The idea of the method looks almost perfect,
especially if one takes into account that after the process is over, the quenching
liquid, usually argon or a low-molecular alkane, evaporates at room temperature completely
and without any residual, after which the product is sealed under vacuum in ampoules
or directly in the body of the end device.
[0011] However, experience has shown that the given method has a number of drawbacks:
- 1. It turned out that alkanes, though weakly, react with the melt droplets. This interaction
becomes noticeable at concentrations of the active component from 45 - 50 at %.
- 2. Argon as quenching medium is more preferable than alkanes, but liquefication of
gaseous argon under low pressure in quantities sufficient for quenching several tens
of grams of melted metal droplets appeared to be a problem difficult to solve.
The temperature interval for the existence of liquid argon under a pressure lower
than 1 atm does not exceed three degrees, and taking into consideration the technical
limitations of the method, it appeared to be even smaller, about 1.5 degrees Under
such conditions the maximum achievable thickness of a liquid interlayer between solid
and gaseous argon comprises only a few millimeters. This allowed producing small quantities
of high purity super active powders in a regime of injection of thin jets of melt
but did not provide a possibility to obtain cast shot of diameter 2 -3 mm. Droplets,
generated in the drip-off regime due to the lack of liquid argon fused together into
one big cake, which then solidified on the solid argon surface.
- 3. Also the product according to WO 2004/082873 has some drawbacks. Though the properties
of the pure powders of alkaline-earth metals obtained by quenching in pure argon are
unique, the products are of little use for vacuum applications, and for the time being
no methods for their binding into a conglomerate of particles have been developed.
At the same time cast shot of diameter 2 - 3 mm obtained by quenching in a liquid
alkane have limitations in the concentration of an active component, and their specific
surface area is not large.
[0012] So, in spite of extremely high sensitivity of alloys of alkaline-earth metals to
air and moisture, up till now no gas sorbent on their basis has been created that
would have a structure of today's non-evaporable getters, i.e. which represent by
itself a porous body consisting of strongly connected particles the surface of which
is easily available for reactions with gases.
Brief summary of the invention
[0013] Thus it is an object of the present invention to provide a new class of gas sorbents
with high surface area and a method for producing the same which is free from one
or more of the disadvantages of the prior art processes.
[0014] A new approach to the problem of dispersion of chemically active materials, which
allows developing gas-permeable intermetallic granules with high concentration of
alkaline-earth metal is suggested below.
Brief Description of the Drawings
[0015]
- Fig. 1
- shows a phase diagram of A - AMe.
- Fig. 2
- shows the structure of the granules produced according to the method according to
the present invention.
- Fig. 3
- shows a diagram of the vapor pressure of component A above A - Me solid alloys depending
on their composition.
- Fig. 4.
- shows an apparatus for producing intermetallic porous granules according to the present
invention.
- Fig. 5
- shows a cryogenic unit.
- Fig. 6
- shows the vapor pressure pA above solid mixtures vs. time t (volatilization curves).
- Fig. 7
- shows sorption characteristics related to 100 mg of getter material according to the
present invention.
Summary of the Invention
[0016] The present invention therefore relates to new gas sorbents on the basis of intermetallic
compounds with high surface area of the formula A
nMe
m, where A is a chemically active volatile metal and Me is a non-toxic nonvolatile
metal, and where n ≥ m, in the form of an isolated dendrite carcass, separated from
a rapidly solidified heterogeneous alloy with the help of sublimation of its volatile
fraction, the intermetallic compounds of the alloy being obtainable by a method comprising
the following steps:
- mixing and melting of initial metals and homogenization of the melt under negative
pressure of inert gas,
- manufacturing of cast shot by quenching of melted droplets under positive pressure,
- obtaining of skeleton-type granules by evaporation of the excess of the component
A from cast shot under vacuum.
[0017] Also, the present invention relates to a method for producing high-purity metallic
gas sorbents on the basis of intermetallic compounds of the formula
A
nMe
m
which are in a thermodynamic equilibrium with the component A forming with it an eutectic
and in which A is a chemically active volatile metal, Me is a non-toxic non-volatile
metal, and n ≥ m, starting from chemically active metals or alloys, said method comprising
the following steps:
- mixing and melting of initial metals and homogenization of the melt under negative
pressure of inert gas, preferably argon,
- manufacturing of cast shot by quenching of melted droplets under positive pressure,
- obtaining of skeleton-type granules by evaporation of the excess of the component
A from cast shot under vacuum,
- packaging of the product by sealing it off in a container under vacuum or under negative
pressure of an inert gas, preferably argon.
[0018] Also, the present invention relates to an apparatus for carrying out the method for
producing high purity metallic gas sorbents, said apparatus comprising
- a charging compartment (I) comprising a glove box and a doser (4) for charging and
mixing of initial metals or components,
- a melting compartment (II) comprising a crucible (6), wherein the initial metals or
components, previously subjected to deep outgassing, are introduced, a flight tube
(20),
- a quenching compartment (III), where the droplets solidify in liquid argon,
- a sublimation compartment (IV) comprising a gas collector (13).
[0019] The new product according to the present invention is an intermetallic dendrite carcass,
separated from a rapidly solidified heterogeneous material by sublimation of its volatile
fraction. Both the product and the method of its production differ in principle from
the traditional variants of getter structures and technologies.
[0020] The described method is applicable to intermetallic compounds A
nMe
m, which are in a thermodynamic equilibrium with the component A forming with it eutectics
(Fig. 1) and in which A is a chemically active volatile metal, Me is a non-toxic nonvolatile
metal, and n ≥ m. For a case where A = Ca or Sr, these compounds can be specified
as Ca
3Ag, Ca
2Cu, Ca
28Ga
11, Ca
3In, Ca
2Si, Ca
2Ge, Ca
2Sn, Sr
3Ag
2, SrCu, Sr
8Al
7, Sr
8Ga
7, Sr
3In, Sr
2Si, Sr
2Ge, Sr
2Sn and SrNi [see H.Okamoto. Phase Diagrams for Binary Alloys, ASM International, Materials
Park, OH, 2000].
[0021] The essence of the invention is the following. If a molten droplet of concentration
c
0, containing a certain excess of component A over a stoichiometric composition c
s (Fig. 1), is subjected to quenching in a liquid cooling agent, then as a result of
crystallization a typical structure will appear (Fig. 2), consisting of a dendritic
carcass A
nMe
m and an eutectic c
e, which fills the space between the dendrite arms [see e.g. M. C. Flemings. Solidification
processing, McGraw - Hill Book Corp., N.Y., 1974; R. Elliot. Eutectic Solidification
Processing, Butterworths, London, 1983; E.J. Lavernia et al., Int. Material Rev. ,
Vol. 37, Nº 1, 1992, 1 - 44; B.H. Kear et al., Metal. Trans., Vol.10A, 1979, 191 -
197; S. Annavarapu et al., Int. J. Powd. Met., Vol. 29, Nº4, 1993, 331 - 343 etc.].
Regarding the alloys A - Me (above), the correlation

should hold, where p
A (A
nMe
m) is the partial vapor pressure of the component A above the A
nMe
m phase and

is the vapor pressure of pure metal A under the same conditions [see e.g. S. Srikanth
et.al. Met. Trans., 22 B (1991) 607 - 616; B.P. Burylev et al., Russ. J. Phys. Chem.,
Vol.48, Nº 6, 1974, 809 - 811; F. Sommer u.a., Z. Metallkd., Bd. 74 , 1983 100 - 104;
O. Kubaschewski u.a. Z. Elektrochem., Bd. 53 , Nº 1, 1949 32 - 40; D. Risold et al.,
Calphad, Vol. 20, Nº 2, 1996, 151 - 160, etc.].
[0022] Taking into account these two factors (the structural one and the thermodynamic one)
let to the idea to generate of accessible voids in a form of micro slits and micro
channels in quenched shot of c
0 with the help of the method of evaporation of the volatile component A from the eutectic
structural constituent.
[0023] The parameters of the sublimation process are defined by the diagrams T- c (Fig.
1) and p - c (Fig. 3). The first one limits the volatilization temperature T
p to the subsolidus area T
p < T
c, to avoid the coursing effect on the dendrite carcass during the appearance of the
liquid phase. The second one sets pressure conditions of the process (Fig. 3)

where P is the pressure in the volatilization chamber, set by an operator. These
conditions provide a sufficient rate of sublimation of A but prevent the decomposition
of the A
nMe
m phase. The end product has the form of a ball with a skeleton intermetallic structure
(Fig. 2). High chemical activity and high gas permeability of this kind of material
make it a very valuable and potent gas sorbent, equally capable of being applied in
vacuum devices and gas purifiers.
[0024] Distinctive features and advantages of the new gas sorbent are:
- 1. High and long-term activity at room temperature towards all gases except noble
ones.
- 2. Fractal structure of the intermetallic carcass formed during droplet crystallization
under conditions of rapid heat dissipation during quenching. This kind of structure,
imparting high gas permeability to the granules, possesses high specific surface area
and due to its intermetallic nature also has higher mechanical stiffness, which by
many times exceeds the strength of the elemental components A and Me.
- 3. Versatility and flexibility of the product:
- binary intermetallic compounds AnMem give a wide choice of material objects of different degree of activity;
- among AnMem phases there are some, in which the second component is also known for high affinity
to active gases (e.g. Al, Ni);
- the specific surface area of the granules and their porosity can also be controlled
in a wide range by changing the initial concentration c0 (the porosity is greater the more c0 differs from cs and the closer it is to ce), and the diameter of the droplets (with decreasing diameter the cooling rate increases,
which leads to smaller dendrite arm spacing and accordingly to an increase of the
specific surface area of the product);
- incomplete volatilization of phase A is also an additional means to increase the fraction
of the active component in the granules.
- 4. Good ventilation properties of the product. A load of porous granules creates a
special material medium, which allows two kinds of gas flows: convective flows along
the voids between the granules and molecular diffusion along the pores between dendritic
arms.
This widens the fields of applications for the product.
- 5. Damping properties of pores. The external dimension of porous granules does not
practically increase during sorption and no breaking stresses are formed in them,
unlike in the cast shot of the same composition.
- 6. Nontoxicity of the granule substance.
[0025] To produce the above described product it is necessary to have equipment allowing
performing in a wide temperature range all the necessary operations with the chemically
active material without its contamination or unacceptable changes of the composition.
An apparatus of this kind is shown in Fig. 4.
[0026] The initial metals, previously subjected to deep outgassing, are introduced into
a crucible 6 under argon, active ones from a glove-box, inactive ones from a doser
4. The load is melted, homogenized, and then the resulting melt is pressed through
a capillary appendix into a flight tube 20 (Fig. 5), where the droplets solidify in
liquid argon, which condensates and is collected in the needed quantities on an argon
"stopper" at positive gas pressure. This stopper, formed in the narrowed part of the
tube, cooled with liquid nitrogen, closes the cross-section of the flight tube for
the duration of the melt drip-off.
[0027] When the dropping process is over the argon stopper is unfrozen and cast shot fall
down into a glass collector 13 (Fig. 4), which also serves as a sublimation chamber.
From below a furnace 12 is moved onto the collector and vacuum vaporization of the
volatile phase of the eutectic is carried out.
[0028] Vapors of component A condensate on the cold curved part of the collector and do
not get through into the flight tube. The process is terminated at the moment when
vacuum gage 2 (Fig. 4) in a sublimation compartment IV shows an abrupt pressure drop,
which indicates the disappearance the last crystals of the A phase (Fig. 6). The furnace
is moved down and the lower end of the collector containing the product is sealed
off under vacuum to form an ampoule.
[0029] The given method allows producing in one charge of the apparatus several tens of
grams of porous granules A
nMe
m of diameter from ~0.5mm to ~5mm, preferably with the diameter 2-3 mm. This is a result,
which was unachievable before and which became possible due to the following technical
solutions:
- 1. Quenching of melt droplets in argon not under negative pressure, like in the method
of Pat. WO 2004/082873, but under positive pressure. Increase of pressure up to 5
bar, and preferably to 3 bar, widened the range of the liquid state of argon by more
than 10 times and eliminated the problems connected with its condensation in required
quantities thus allowing increasing the capacity of the method to ~ 100g of the product
during one technological cycle.
- 2. Additional thermal treatment of the cast shot for adding them a new quality: gas
permeability and increase of the specific surface area by many times. This treatment
consists of the removal of a volatile constituent of the material by sublimation provided
that

which leads to appearance of a skeleton-type structure.
- 3. Continuous vapor pressure monitoring in a sublimation chamber as an element of
a new technology. A fast drop of vapor pressure above the solid granules under isothermal
conditions indicates that the material crossed the phase boundary and signals the
necessity to stop the sublimation process (Fig. 6). Essentially, a method of phase
analysis of granules in situ is introduced here, and this is the best solution considering
the high chemical activity of the treated material. Method justification is given
below.
- 4. A new design of the technological equipment. An apparatus is designed in such a
way (Fig. 4), that allows maintaining the processes taking place under the pressure
of 5 bar and also periodical evacuation of the inside atmosphere to a level not worse
than 10-7 mbar. The purity of the product and its isolation from the outside environment are
the priorities of the method.
[0030] Other distinctions from the designs known in this field are: uniting a process column
with a glove box; a refrigerator with a bypass based on the idea of a solid argon
stopper; a sublimation chamber with a zigzag trap for a volatile phase and with a
residual gas analyzer.
[0031] The new method radically differs from the traditional methods of production of non-evaporable
getters. While the previous methods came down to dispersion of the material and its
reassembly into a porous conglomerate of particles, the new method consists of a sequence
of actions of the opposite character: first formation of the droplets and their crystallization
(analogue of assembly) take place and then removal of one of the structural parts
of the material by sublimation (analogue of dispersion) is carried out. At this stage
of polyphase crystallization of droplets the morphological contours of the future
product are founded.
[0032] In conclusion it should be added that the method developed for producing selected
dendritic structures by evaporation of the volatile phase, regularly distributed in
the volume of the material, can be applied not only to Ca and Sr alloys and generally
not only to binary alloys.
[0033] Equally, this method will also work in case of many other metallic materials containing
at least one volatile and at least one non-volatile component. In particular, it is
easy to obtain porous metallic materials, in which Li, Na, Mg, Ba, serve as a component
A and transitional metals like Fe, Zr, Ni, Ti, Ta, play the role of component Me.
[0034] What concerns applications of skeleton-type metallic materials, it can be expected
that they will be used not only as gas sorbents but also as catalysts.
Detailed Description of the Invention
[0035] The given method allows the preparation of an alloy c
o from corresponding quantities of elements A and Me directly in the melting compartment
II of the process column (Fig. 4).Such a solution guarantees a higher purity of the
product than it was allowed by the previous technique of the separate synthesis of
a semi-ready product in special equipment with the subsequent transfer of the superactive
product to the station for granulation (see WO 2004/082873).
[0036] According to the new method high purity dendritic pieces of previously distilled
Ca or Sr (e.g., 99.98% metals basis, Alfa Aesar) are taken out from a glass ampoule
and thrown down from a glove box into crucible 6 (Fig. 4). Further on metal A is melted
in an atmosphere of especially pure argon under a pressure around 10 mbar with the
help of inductive heating (see coil 8 on Fig. 4), maintaining below the crucible excess
pressure, which prevents leaking of liquid metal through a capillary into the flight
tube. Then pieces of metal Me, thoroughly outgassed before in a process of vacuum
remelting under ~ 10
-6 mbar, are thrown down into melt A from the doser 4.
[0037] To prevent splattering of the metal, foaming of the reacting mass and its moving
upwards, continuous observation over the state of the surface of the melt is performed
through the window 1. The optimal regime of the process is maintained by varying the
gas pressure in the interval from ~10
-3 mbar to ~1mbar, balancing between a state of dead liquid and a slightly boiling state.
This allows to keep the melt within the minimum volume and at the same time to achieve
its further outgassing.
[0038] After the mixing stage is completed the gate valve 5 is closed, the melt is evacuated
for a short time and then the argon pressure in compartments II and III is increased
for condensation of liquid argon in a quenching bath (Fig. 5).
[0039] The quenching bath represents by itself a central part of a flight tube with a small
narrowed part with a metallic cartridge 1 welded to it, which serves as a reservoir
for liquid nitrogen. From outside this cartridge is surrounded with a thermal insulator
90 with a lid 30 (see also 9 on Fig. 4).
[0040] During filling the cartridge with liquid nitrogen up to the level of the lower end
of the adiabatic wall 60 (Fig. 5) the narrow part of a thin-walled flight tube quickly
freezes to such an extent, that a tight stopper of solid argon with widened ends is
formed. This stopper can withstand the weight of a substantial column of liquid argon
together with crystallized metallic product. To avoid an impact of parasitic axial
forces on the argon stopper which is especially undesirable during unfreezing of the
stopper, a bypass line 16 (Fig. 4), which automatically levels the gas pressure above
and below the quenching bath, is connected to the flight tube in the refrigerator
area.
[0041] For obtaining a liquid argon column of a sufficient height a two-zone model is used
with a "cold" zone in the form of a vessel with liquid nitrogen and a "hot" zone in
the form of a part of the flight tube with a filament heater 40 (Fig. 5). The height
of the liquid argon column ΔH = H
1g - H
s1 (Fig. 5, b) is controlled by two parameters: the heat power produced by cryoheater
40 and the gas pressure in the flight tube. The first one defines the value of T
h, the second one the range of liquid argon ΔT
L (Ar).
[0042] Formation and adjustment of temperature ranges in the quenching bath is carried out
with the help of four thermocouples, two of which are welded at different height to
the narrow part of the tube while the other two are welded, also at different height,
between the loops of the cryoheater 40 (the thermocouples are not shown in Fig. 5.).
[0043] After stabilization of all the temperature fields inside the refrigerator, the next
step is pressing the melt through a capillary into liquid argon. For stimulation of
the jet disintegration the surface of the melt is forced with pressure pulses sent
along the gas line through a solenoid valve 17 (Fig. 4). For the same purpose low-frequency
acoustic vibrations, directed from an outside generator to the area of the capillary,
can be used. Characteristic values of this process stage are: the depth of the liquid
argon layer is ~ 10cm, the gas pressure in the column is 1.5 - 2.0 bar, the mass of
the quenched particles is 35 - 60 g, the duration of the stage is 10 - 15 minutes,
the main fraction of shot with diameter 2 - 3 mm is about 70% of the total product.
[0044] After the quenching stage is completed, maximum pressure, e.g. 3 bar, is set on the
safety valve 15, the bypass line 16 is connected with the previously evacuated tank,
and unfreezing of the refrigerator 9 (Fig. 4) is started. The argon, collected in
the tank, is used again in the next production cycle.
[0045] When the argon stopper melts, particles fall down into collector 13 and compartment
IV is isolated from the upper part of the station with the help of the gate valve
10. The collector with cast shot is pumped down to ~ 10
-7 mbar and heated up to ~250° C. Furnace 12 is lifted from below and the pressure is
again brought to ~ 10
-7 mbar. Finally, while the vacuum line is working, a flow regime with argon pressure
P is set in the system with the help of the valve rv (Fig. 4) and the temperature
of the furnace is raised to T
p. The volatile constituent of eutectic
ce, which fills the space between the dendritic arms of cast shot starts to evaporate
and A deposits as a condensate on the cold zigzag part 11 of the particle collector.
[0046] The moment when the last crystals A are evaporated and the entire material becomes
single phase of the composition A
nMe
m is critical, because continuation of the process under the same conditions starts
the thermal decomposition of the intermetallic carcass A
nMe
m

which leads to deterioration of the product properties (signs s and g mean solid and
gaseous states, respectively). That is why the given invention parallel to volatilization
of phase A provides for a continuous phase analysis of the material. Diagnostic of
phase composition is carried out on the basis of vapor pressure data coming from a
vacuum gage and residual gas analyzer (RGA), installed in a vacuum line of compartment
IV (Fig. 4). This new method of phase analysis naturally fits in the process technology
and it was only necessary to develop its methodological basis (see Detailed description
of the drawings, Fig.1, 3 and 6).
[0047] According to the new method, as long as the vapor pressure above the treated material,
recorded in coordinates p - τ (Fig. 6), can be considered constant, parameters of
the sublimation process are maintained unchanged. But as soon as the pressure in the
system decreases sufficiently, there is a necessity to refer to indications of a residual
gas analyzer in order to define the nature of the registered pressure decay and to
distinguish between the effects, which accompany outgassing
1, and the phenomena related to the discussed fundamentals.
1 All commercially available metals, even the purest of them, contain a large amount
of dissolved non-metal impurities, especially gaseous ones. Heating the metal in a
vacuum causes a temporary pressure increase followed by a decrease at the end of outgassing.
This effect should be recognizes and rejected as a false one.
[0048] The experimental dependence p = p (τ), separated from outgassing effects, has the
form of curve 2 in Fig. 6. The time τ
s needed for a material object to reach the homogeneous state can with an adequate
for the given case accuracy be found by projection of a point of intersection between
an experimental curve 2 and a calculated isobar

onto axis τ. At τ = τ
s when the entire A - constituent of the eutectic is removed from the granules, the
sublimation process is stopped by switching the furnace off and moving it down.
[0049] The final product is sealed off under vacuum or inert gas and used further according
to the destination. The collector tube must not necessarily be made of glass; it also
can be made of metallic materials which can be sealed off under vacuum. The upper
part of the collector with a zigzag part and a flange is cleaned from condensate,
washed, dried and rebuilt by attaching a new test tube from below.
Detailed description of the drawings
[0050]
Fig. 1. Phase diagram A - AMe:
Te - eutectic temperature, Tp - sublimation temperature, Ce - eutectic concentration,
c0 - concentration of the initial melt, cs - concentration of AnMem crystals, c1 - concentration of AMe crystals, dashed line (- - - - ) is a phase trajectory of
the material in the process of sublimation.
Here and further under AMe we understand a phase, which is in a thermodynamic equilibrium
with A
nMe
m, and which can represent either a compound A
kMe
d, where n /m > k/d, or it can be simply a component Me.
Phase composition of A - Me alloys at subsolidus temperatures: in the range (0, c
s) a mechanical mixture of crystals A and A
nMe
m ; at c = c
s a single phase alloy consisting of A
nMe
m crystals; in the range (c
s , c
1) a mechanical mixture of crystals A
nMe
m and AMe; at c = c
1 a single phase alloy consisting of AMe crystals; at c > c
1 a binary phase area appears again, etc.
The process of vacuum sublimation of a volatile phase A can be described by a motion
of a representative point with initial coordinates (c
0, T
p) along isotherm T = T
p in the direction of increasing Me - concentration (dashed line with an arrow).
Fig. 2. The structure of the granules:
- (a) - cast shot after quenching, (b) - skeleton granules after sublimation, I - a
small granule with a diameter of 10-2 - 10-1 mm, II - a big granule with a diameter of ~ 1mm and more, 1 - dendrites of AnMem, 2 - eutectic ce, 3 - shrinkage void; (e) - skeleton granules, obtained from the shot of concentration
c0 = c1, c0 = c2 and c0 = c3, with ce < c1 < c2 < c3 < cs.
Cast shot c
0 consist of dendrites of primary phase A
nMe
m and eutectic C
e, which is a mixture of phases A and A
nMe
m (a). After sublimation of the volatile phase A granules consist of a dendrite carcass
A
nMe
m and remains of eutectic in a form of particles A
nMe
m (not shown in Fig. 2) intercalated between dendritic arms (b).
The dendrite arm spacing is the smaller the larger the droplet cooling rate is, and
the cooling rate is the higher the smaller the droplet size is. That is why big granules
(II) have rougher structure and smaller specific surface area than small granules.
(I). That is, the granule size is a factor defining sorption properties of the product.
Another factor of this kind is the initial composition of the alloy c
0 (e): the volume fraction of the pores, i.e. porosity, is the bigger the closer concentration
c
0 is to c
e.
Fig. 3. A diagram of the vapor pressure of component A above A - Me solid alloys depending
on their composition.
The graph shows the property of intensive quantities, to which vapor pressure refers,
to retain their value constant in mechanical mixtures of phases independent of the
quantitative ratio of those phases.
Fig. 4. An apparatus for producing intermetallic porous granules:
I - a charging compartment; II - a melting compartment, III - a quenching compartment,
IV - a sublimation compartment;
1 - a window, 2 -a vacuum gage, 3 - a valve, 4 - a doser, 5 - an upper gate valve,
6 - a crucible, 7 - a quartz tube, 8 - an inductor, 9 - a refrigerator, 10 - a lower
gate valve, 11 - a trap for vapor A, 12 - a furnace, 13 - a collector of granules,
14 - pressure gauge, 15 - a safety valve, 16 - a bypass, 17 - a solenoid valve;
rv - membrane valve, RGA - a residual gas analyzer.
See the detailed comments to this figure in Detailed Description of the Invention.
Fig. 5. A cryogenic unit:
- (a) design, 10 - a metallic cartridge, 20 - a flight tube, 30 - a lid of a refrigerator
(a thermal insulator), 40 -a heater, 50 - nitrogen vapor, 60 - a part of a tube with
a double evacuated wall, 70 - liquid argon, 80 - liquid nitrogen, 90 - a cylindrical
body of a refrigerator (a thermal insulator), 100 - solid argon, 110 - liquid argon
film, 120 - argon vapor;
- (b) vertical temperature distribution in a quenching bath (an idealized scheme), Hh1 and Hh2 - coordinates of a "hot zone", H1g - an upper level of liquid argon, Hs1 - a lower level of liquid argon, HN1 and HN2 - coordinates of a "cold zone", TL (N) - temperature of boiling nitrogen, Ts1- temperature on the border of solid and liquid argon, T1g - temperature on the border of liquid and gaseous argon, ΔTL (Ar) - a temperature interval of the liquid state of argon, Troom - room temperature.
See the detailed comments to this figure in Detailed Description of the Invention.
Fig. 6. Vapor pressure pA above solid mixtures vs. time τ (volatilization curves):
τs - time for achieving a homogeneous state of AnMem, τ1 - time for achieving a homogeneous state of AMe, 1 - theory, 2 - experiment.
A stepped configuration of the dependence p = p (τ) with jumps at τ = τ
s and τ = τ
1 is a consequence of a known law of vapor pressure change with concentration in solid
mixtures (see Fig. 3). Pressure jumps at τ
s and τ
1 correspond to the moment of crossing the phase boundaries c = c
s and c = c
1 (Fig. 1) by the representative point.
Fig. 7. Sorption characteristics related to 100mg of getter material:
- 1 - Ba-films [P.della Porta, E.Argano, Vacuum, 10 (1960) 2232; J.J. Maley, J.J.Mascony. J. Vac. Sci. Technol., 6 (1969) 513];
- 2 - skeleton like granules of AnMem [see Example and Discussion];
- 3 - SORB-AC® Cartridge Pumps on the basis of St 7071 [SAES Getters Group];
- 4 - pieces of binary Ba-alloys [US 5,412,6072].
2 Conversion of data, obtained from the measurements on sorption of hydrogen or nitrogen
with coefficients of 0.65 and 4.3, respectively.
3 Direct measurements of sorption of oxygen.
See the detailed comments to this figure in Example and Discussion.
Advantages of the present invention
[0051] Ia. A new product in the form of an isolated dendrite carcass separated from a rapidly
solidified heterogeneous alloy with the help of sublimation of the excess of the volatile
fraction has been developed. This kind of material with its high surface area and
high gas permeability - depending on the composition - can be used as gas sorbents
or as catalysts.
[0052] Ib. The new materials form a wide class of substances of different elemental composition,
which also differ in dimensional and structural parameters.
[0053] Ic. Novelty and advantages of intermetallic materials based on calcium and strontium:
- specific crystal structure of a loopless tree type with high specific surface area;
- extraordinary reactivity providing high sorption qualities of the material;
- significant mechanical strength;
- controllability of structural characteristics and easy adjustability to different
requirements;
- universality with respect to different applications, i.e. equal applicability both
to the problems of gas purification and to the problems of vacuum technology.
[0054] IIa. A technology of manufacturing a new product has been developed. It comprises
the following four stages:
- mixing and melting of initial metals and homogenization of the melt under negative
pressure of argon;
- manufacturing of cast shot by quenching of melted droplets in inert gas, especially
in liquid inert gas, under positive pressure;
- obtaining of skeleton-type granules by evaporation of an excess of the volatile component
under vacuum;
- packaging of the product by sealing off in glass or metal ampoules under vacuum or
under negative argon pressure.
[0055] IIb. New constructional and operational solutions:
- combining of a glove box with charging and melting compartments of a process column
(provides cleaner conditions for the process);
- observation of the melt surface through a window during mixing of the components (allows
by changing the argon pressure in the melting compartment to avoid blistering and
spitting of the reacting mass and its solidification in the upper cold part of the
crucible);
- condensation of liquid argon at positive pressure, namely, in the range from 1 to
5 bar, in order to obtain a sufficient quantity of quenching liquid (allows increasing
the capacity of the method and quenching of droplets of large diameter, up to 5mm);
- cryorefrigerator based on a two-zone model and the new inventive concept of a solid
argon stopper (allows collecting a large amount of liquid argon upon filling with
liquid nitrogen and upon unfreezing - to set the cast shot free);
- evaporation of the volatile phase from the cast shot in order to obtain porous granules;
- a sublimation compartment of a reaction and processing column with a particle collector,
a furnace, a zigzag trap for A vapor, and tools for analyzing the gas-vapor phase
(a vacuum gage and a residual gas analyzer);
- phase analysis of the treated material during the sublimation process according to
the results of vapor pressure measurement.
[0056] The invention will now be described by way of examples without limiting the same
to them.
Examples (according to the present invention)
[0057] For the preparation of
porous granules of Ca3In an
indium ingot (Puratronic, 99.9999% , Alfa Aesar) is outgassed in an Al
2O
3 boat raising the temperature to 600°C in such a way, that the pressure in the vacuum
furnace does not increase higher than 10
-6 mbar. Then the doser 4 (Fig. 4) is charged, in an argon flow with the gate valve
5 closed, with pieces of the outgassed
indium (19g), after which compartment I is pumped down and filled again with argon to the
pressure of 1 bar.
[0058] The procedure of mixing the components. In the glove box under Ar an ampoule with 25 g of
calcium metal (crystalline dendritic pieces, 99.98%, Alfa Aesar) is broken, a blank of a
feed pipe connecting the glove box with the process column is opened, pieces of the
calcium metal are thrown down into a Mo-crucible while the gate valve 5 is open and the connecting
feed pipe is closed from inside of the glove box with the blank, and the column is
pumped down to ~10
-7 mbar. The
calcium metal is heated in a vacuum to ~250°C. extremely pure argon is introduced into the
column under the pressure of 10 mbar, the
calcium is melted and then
indium pieces one by one are thrown down into this melt from the doser according to the
scheme described in Detailed Description of the Invention.
[0059] Quenching of droplets. After the refrigerator is filled with liquid nitrogen, while the gate valves 5 and
10 are closed, the gas pressure in the compartments II and III is increased to 2 bar,
in order to start condensation and collecting liquid argon in the quenching bath.
After a liquid column of argon ~ 8cm high is formed, pressing the melt at the temperature
of ~800°C through a capillary with a diameter of an opening of 0.8 mm under a minimum
pressure from above is started, so that the melt jet has a low rate and its disintegration
takes place directly at the exit of the capillary.
[0060] During quenching of the melt droplets the compartment IV (Fig. 4) is pumped down
and filled with argon to a pressure of 1 bar. When the melt is poured completely,
a line which connects the compartment III with the tank is opened for transporting
argon into the tank. When the pressure in the column approaches 1 bar, the gate valve
10 is opened, the lid 3 (Fig. 5) is lifted and a flow of warm air is directed from
above into the liquid nitrogen for speeding up the unfreezing process.
[0061] The remains of a solid argon stopper fall down into the particle collector 13 (Fig.
4) together with the shot and after the final volatilization of solid argon, first
the valve in the line tank - bypass 16 is closed, and then the gate valve 10 is closed,
too.
[0062] Sublimation treatment. Following the procedure described in Detailed Description of the Invention, a flow
regime is set in the compartment IV under an argon pressure P = 10-
6 mbar and the temperature of the furnace is slowly raised, not exceeding 450°C, till
a film of condensed Ca appears on the zigzag part 11.
[0063] After the gases are removed the process stabilizes and is stopped only at the moment
when the pressure in the system rapidly decreases. The product is sealed-off in an
ampoule. It consists of porous granules of Ca
3In with a wide particle-size distribution; the main fraction is - 1.8 mm in diameter.
[0064] Porous granules of SnSr2 are obtained in a similar way. For this purpose, the apparatus is charged with 25
g of pure
strontium (distilled dendritic pieces,99.95%, Alfa Aesar) and 10 g of
tin previously outgassed at 750°C under a vacuum of 10
-6 mbar (Puratronic, 99.999%,Alfa Aesar). The procedure resembles the one described
above for Ca
3In with the following differences: At the stage of mixing the components the argon
pressure is varied in the range of 1 - 100 mbar. A Ta-crucible is used for melting,
the melt is pressed at the temperature of 1200°C through a capillary with an opening
of 0.6 mm in diameter. Sublimation of strontium is carried out at 350 - 400°C. The
porous granules obtained have an average diameter of ~ 1.4 mm.
[0065] For evaluation of sorption properties of the new product a glass tube appendix protruding
outside from a high-vacuum chamber was charged with a mixture of porous granules of
Ca
3In and SnSr
2, seven parts of the former and eleven parts of the later one, with the mass ratio
being 1:1. Granules of Ca
3In, with a diameter of ~ 1.8mm had estimated porosity of ~ 20%; granules of SnSr
2 with a diameter of ~ 1.4mm had estimated porosity of ~ 30%.
[0066] The granules were sealed off under vacuum, weighed together with an ampoule, and
introduced into a test chamber containing a mechanism for breaking ampoules. The measurements
were carried out by a dynamic flow method using two chambers according to the procedure
described in Pat. US 5,312,607. After the ampoule was baked for two hours at 200°
C it was opened at room temperature when the pressure in the chamber reached the basic
value of 10
-8mbar. Oxygen was used as the gas to be sorbed. When the measurements, which were carried
out at room temperature, were completed, the glass was collected, rinsed, dried and
weighed, to define the mass of the sample from the difference in weight.
[0067] Experimental results are shown in Fig. 7 (curve 2). From them it follows that the
new product is an excellent gas sorbent with very high sorption rate and with a sorption
capacity close to the theoretical limit. Also in Fig. 7 data concerning other getter
materials are presented. These data are averaged with the accuracy of an order of
magnitude for the material of each type and reduced to an equal getter mass of 100mg.
[0068] The analysis presented below can not claim completeness and strictness due to the
lack of information about the details of the measurements. But differences in the
properties of the compared materials are so great that they give grounds for several
conclusions.
- 1. Ba-films (curve 1) till now remain leaders in sorption parameters among all getter
materials. Their disadvantages are that they need large free surface, and their toxicity.
- 2. Granules of AnMem with a skeleton structure (curve 2) are inferior to barium films regarding gettering
rates by ~ 103 times. This correlation coincides with the exposed surfaces of Ba-films which are
larger than the exposed surface of the balls of ~ 1.6mm in diameter taken in an amount
equivalent to the mass of the Ba-films.
If the diameter of granules is decreased by one order of multitude, then the sorption
rate increases approximately by 50 times due to the increase of the exposed surface
of the material and the increase of dispersion of its structure.
- 3. Getters on the basis of transition metals (curve 3) are characterized by an appreciably
lower sorption rate than Ba-films and even lower than AnMem. Partially this can be explained by the lower value of the sticking coefficient of
transition metals, and also by the rapid passivation of the surface of the particles
of the NEG materials As a tight film of the products of the reaction with gases is
formed on the surface of a transition metal, the sorption process at room temperature
is stopped. But the main disadvantage of the modem NEGs getters is the periodical
need for heating and very low sorption capacity per getter mass unit, constituting
less than one percent of the corresponding specific capacity of Ba-films and of AnMem granules.
- 4. The sorption properties of high concentration barium alloys (in the form of pieces
from ~1 mm to ~ 5mm in size) shown by curve 4, are obviously unsatisfactory. Regarding
size of particles, chemical composition and structure this material is very similar
to cast shot c0 (Fig. 1) before the sublimation treatment. However, sublimation treatment of cast
shot c0 drastically improves the sorption characteristics of the product: the curve 2 (Fig.
7) is by four orders of magnitude higher along the gettering rate axis than the curve
4. Such a large difference in gettering rate is connected, first of all, with the
different specific surface area of compact pieces of barium alloy and of porous granules
of AnMem. A calculation of the dendrite arm spacing according to [J.F. Seconde, M. Suery.
J. Mater. Sci.,19 (1984) 3995] gives for granules of AnMem a specific surface area of about 2.5m2/g, which is by three orders of magnitude higher than for cast shot of the same size.
This clearly shows the advantages of disperse materials not only in the case of transitional
metals, but also in the case of chemically highly active substances, which, as it
is known, are not inclined to passivation of the surface.
[0069] Thus, Fig. 7 gives a visual picture of the general relation between sorption parameters
of getters of different type and serves as a helpful guide for a user in finding the
right material for his needs. The new product takes a high position among getter materials
and has a potential for development. The most advantageous application fields for
the new material are sealed vacuum chambers and gas purification filters.
1. Gas sorbents on the basis of intermetallic compounds with high surface area of the
formula A
nMe
m, which are in a thermodynamic equilibrium with the compound A forming with it an
eutectic, where component A is a chemically active and volatile metal selected from
the group consisting of alkaline metals, earth alkaline metals, and Me is selected
from the group of metals consisting of Ag, Al, Cu, Ga, Ge, In, Ni, Si, Sn , and where
n ≥
m, in the form of an isolated dendrite carcass, separated from a rapidly solidified
heterogeneous alloy with the help of sublimation of its volatile fraction, the intermetallic
compounds of the alloy being obtainable by a method comprising the following steps:
- mixing and melting of initial metals and homogenization of the melt under negative
pressure of inert gas,
- manufacturing of cast shot by quenching of melted droplets under positive pressure,
- obtaining of skeleton-type granules by evaporation of the excess of the component
A from cast shot under vacuum.
2. Gas sorbents according to claim 1, wherein the melted droplets containing a certain
excess of component A over a stoichiometric composition are subjected to quenching
in liquid argon, then as a result of crystallization of a structure occurs consisting
of a dendritic carcass AnMem and an eutectic, which fills the space between the dendrite arms.
3. Gas sorbents according to claims 1 or 2, wherein component A in formula AnMem is from the group consisting of Ca, Sr, Li, Mg, Ba.
4. Gas sorbents according to claim 3, wherein component A in formula AnMem is calcium or strontium.
5. Gas sorbents according to claims 1 to 4, wherein the intermetallic compounds are selected
from the group consisting of Ca3Ag, Ca2Cu, Ca28Ga11, Ca3In, Ca2Si, Ca2Ge, Ca2Sn, Sr3Ag2, SrCu, Sr8Al7, Sr8Ga7, Sr3In, Sr2Si, Sr2Ge, Sr2Sn and SrNi.
6. A method for producing high-purity metallic gas sorbents on the basis of intermetallic
compounds of the formula

which are in a thermodynamic equilibrium with the component A forming with it an
eutectic and in which A is selected from the group consisting of alkaline metals,
earth alkaline metals, Me is selected from the group of metals consisting of Ag, Al,
Cu, Ga, Ge, In, Ni, Si, Sn , and
n ≥
m, starting from chemically active metals or alloys, said method comprising the following
steps:
- mixing and melting of initial metals and homogenization of the melt under negative
pressure of inert gas,
- manufacturing of cast shot by quenching of melted droplets under positive pressure,
- obtaining of skeleton-type granules by evaporation of the excess of the component
A from cast shot under vacuum,
- packaging of the product by sealing it off in a container under vacuum or under
negative pressure of an inert gas.
7. The method according to claim 6, wherein the inert gas is argon.
8. The method according to claims 6 or 7, wherein the melted droplets containing a certain
excess of component A over a stoichiometric composition are subjected to quenching
in liquid argon, then as a result of crystallization of a structure occurs consisting
of a dendritic carcass AnMem and an eutectic, which fills the space between the dendrite arms.
9. The method according to anyone of the preceding claims 6 to 8, wherein component A
in formula AnMem is from the group consisting of Ca, Sr, Li, Na, Mg, Ba.
10. The method according to claims 6 to 9, wherein the intermetallic compounds are selected
from the group containing Ca and Sr as component A in formula AnMem consisting of Ca3Ag, Ca2Cu, Ca28Ga11, Ca3In, Ca2Si, Ca2Ge, Ca2Sn, Sr3Ag2, SrCu, SrgAl7, Sr8Ga7, Sr3In, Sr2Si, Sr2Ge, Sr2Sn, SrNi.
11. The method according to anyone of the preceding claims 6 to 10, wherein the metal
A is melted in an atmosphere of pure argon under pressure of about 1 to 100 mbar with
the help of inductive heating while maintaining below the crucible a slightly excessive
pressure.
12. The method according to any of the preceding claims 6 to 11, wherein the parameters
of the sublimation process are defined from the phase diagrams and thermodynamic data
on A - Me alloys, wherein the volatilization temperature is limited by the subsolidus
area and by the pressures at which decomposition of AnMem crystals does not take place.
13. The method according to anyone of the preceding claims 6 to 12, wherein the additional
thermal treatment of the cast shot consists of a sublimation for removal of a volatile
phase A from the material for obtaining of a skeleton-type structure of isolated intermetallic
compounds.
14. The method according to any of the preceding claims 6 to 13, wherein the condensation
of liquid argon at positive pressure is in the pressure range from 1 to 5 bar in order
to obtain a sufficient volume of quenching liquid.
15. An apparatus for carrying out the method according to one or more of the preceding
claims 7 to 14, said apparatus comprising:
- a charging compartment (I) comprising a glove box and a doser (4) for charging and
mixing of initial metals or components,
- a melting compartment (II) comprising a heater (8) and a crucible (6), wherein the
initial metals or components, previously subjected to deep outgassing, are introduced,
- a quenching compartment (III), where the droplets solidify in liquid argon, a sublimation
compartment (IV) comprising a particle collector (13), a vapour tap (11), and a gas
analyser.
1. Gassorbtionsmittel auf der Basis von intermetallischen Verbindungen mit großer Oberfläche
mit der Formel A
nMe
m, die sich in einem thermodynamischen Gleichgewicht mit der Verbindung A befinden,
die mit ihr ein Eutektikum bilden, wobei Komponente A ein chemisch aktives und flüchtiges
Metall ist, ausgewählt aus der Gruppe, bestehend aus Alkalimetallen, Erdalkalimetallen,
und wobei Me aus der Gruppe der Metalle ausgewählt ist, bestehend aus Ag, Al, Cu,
Ga, Ge, In, Ni, Si, Sn, und wobei
n ≥ m, in Form eines isolierten Dendritgerüsts, das aus einer schnell erstarrten heterogenen
Legierung mit Hilfe von Sublimation seiner flüchtigen Fraktion abgeschieden ist, wobei
die intermetallischen Verbindungen der Legierung durch ein Verfahren erhältlich sind,
das die folgenden Schritte umfasst:
- Mischen und Schmelzen von Ausgangsmetallen und Homogenisierung der Schmelze unter
Unterdruck eines Inertgases,
- Herstellen von gegossenem Granulat durch Abschrecken von geschmolzenen Tröpfchen
unter Überdruck,
- Darstellen von Granulat vom Skelett-Typ durch Verdampfung des Überschusses der Komponente
A aus gegossenem Granulat unter Vakuum.
2. Gassorbtionsmittel gemäß Anspruch 1, wobei die geschmolzenen Tröpfchen, die einen
bestimmten Überschuss an Komponente A bezüglich einer stöchiometrischen Zusammensetzung
enthalten, einem Abschrecken in flüssigem Argon unterworfen sind, und dann als Ergebnis
einer Kristallisation eine Struktur auftritt, die aus einem dentritischen Gerüst AnMem und einem Eutektikum besteht, das den Raum zwischen den Dendritarmen füllt.
3. Gassorbtionsmittel gemäß Anspruchs 1 oder 2, wobei Komponente A in der Formel AnMem aus der Gruppe ist, bestehend aus Ca, Sr, Li, Mg, Ba.
4. Gassorbtionsmittel gemäß Anspruch 3, wobei Komponente A in der Formel AnMem Calcium oder Strontium ist.
5. Gassorbtionsmittel gemäß Anspruchs 1 bis 4, wobei die intermetallischen Verbindungen
aus der Gruppe ausgewählt sind, bestehend aus Ca3Ag, Ca2Cu, Ca28Ga11, Ca3In, Ca2Si, Ca2Ge, Ca2Sn, Sr3Ag2, SrCu, Sr8Al7, Sr8Ga7, Sr3In, Sr2Si, Sr2Ge, Sr2Sn und SrNi.
6. Verfahren zur Herstellung von hochreinen metallischen Gassorbtionsmitteln auf der
Basis von intermetallischen Verbindungen der Formel

die sich mit der Komponente A in einem thermodynamisches Gleichgewicht befinden,
die mit ihr ein Eutektikum bilden und bei dem A aus der Gruppe ausgewählt ist, bestehend
aus Alkalimetallen, Erdalkalimetallen, wobei Me aus der Metallgruppe ausgewählt ist,
bestehend aus Ag, Al, Cu, Ga, Ge, In, Ni, Si, Sn, und
n ≥ m, beginnend bei chemisch aktiven Metallen oder Legierungen, wobei das Verfahren die
folgenden Schritte umfasst:
- Mischen und Schmelzen von Ausgangsmetallen und Homogenisierung der Schmelze unter
Unterdruck eines Inertgases,
- Herstellung von gegossenem Granulat durch Abschrecken von geschmolzenen Tröpfchen
unter Überdruck,
- Darstellen von Granulat vom Skelett-Typ durch Verdampfung des Überschusses der Komponente
A aus gegossenem Granulat unter Vakuum,
- Abpacken des Produkts durch Versiegeln in einem Behälter unter Vakuum oder unter
Unterdruck eines inerten Gases.
7. Verfahren gemäß Anspruch 6, wobei das inerte Gas Argon ist.
8. Verfahren gemäß Ansprüche 6 oder 7, wobei die geschmolzenen Tröpfchen, die einen bestimmten
Überschuss an Komponente A bezüglich einer stöchiometrischen Zusammensetzung enthalten,
einem Abschrecken in flüssigem Argon unterworfen werden, und dann als Folge einer
Kristallisation eine Struktur auftritt, die aus einem dentritischen Gerüst AnMem und einem Eutektikum besteht, das den Raum zwischen den Dendritarmen füllt.
9. Verfahren gemäß irgendeinem der vorstehenden Ansprüche 6 bis 8, wobei Komponente A
in Formel AnMem aus der Gruppe ist, bestehend aus Ca, Sr, Li, Na, Mg, Ba.
10. Verfahren gemäß Ansprüchen 6 bis 9, wobei die intermetallischen Verbindungen aus der
Gruppe ausgewählt sind, enthaltend Ca und Sr als Komponente A in Formel AnMem, bestehend aus Ca3Ag, Ca2Cu, Ca28Ga11, Ca3In, Ca2Si, Ca2Ge, Ca2Sn, Sr3Ag2, SrCu, Sr8Al7, Sr8Ga7, Sr3In, Sr2Si, Sr2Ge, Sr2Sn, SrNi.
11. Verfahren gemäß irgendeinem der vorstehenden Ansprüche 6 bis 10, wobei das Metall
A in einer Atmosphäre aus reinem Argon bei einem Druck von ungefähr 1 bis 100 mbar
mit Hilfe von induktiver Erwärmung geschmolzenen wird, während unter dem Tiegel ein
leicht überhöhter Druck beibehalten wird.
12. Verfahren gemäß irgendeinem der vorstehenden Ansprüche 6 bis 11, wobei die Parameter
des Sublimationsvorgangs aus Phasendiagrammen und thermodynamischen Daten zu A-Me-Legierungen
festgelegt werden, wobei die Verflüchtigungstemperatur durch den Subsolidus-Bereich
und durch die Drücke beschränkt wird, bei denen eine Zersetzung von AnMem-Kristallen nicht stattfindet.
13. Verfahren gemäß irgendeinem der vorstehenden Ansprüche 6 bis 12, wobei die zusätzliche
thermische Behandlung des gegossenen Granulats aus einer Sublimation zum Entfernen
einer flüchtigen Phase A aus dem Material besteht, um eine gerüstartige Struktur von
isolierten intermetallischen Verbindungen zu erhalten.
14. Verfahren gemäß irgendeinem der vorstehenden Ansprüche 6 bis 13, wobei die Kondensation
von flüssigem Argon bei Überdruck in dem Druckbereich von 1 bis 5 bar liegt, um ein
ausreichendes Volumen an Abschreckflüssigkeit zu erhalten.
15. Vorrichtung zur Ausführung des Verfahrens gemäß einem oder mehr der vorstehenden Ansprüche
7 bis 14, wobei die Vorrichtung umfasst:
- einen Beladungsabschnitt (I), umfassend eine Glovebox und eine Dosiereinrichtung
(4) zum Beladen und Mischen von Ausgangsmetallen oder Komponenten,
- einen Schmelzabschnitt (II), umfassend einen Heizer (8) und einen Tiegel (6), worin
die Ausgangsmetalle oder Komponenten, die vorher einer tiefen Entgasung unterworfen
wurden, eingeführt werden,
- einen Abschreckabschnitt (III), wo die Tröpfchen in flüssigem Argon erstarren,
- einen Sublimationsabschnitt (IV), umfassend einen Partikelkollektor (13), eine Dampffalle
(11) und eine Gasanalyseeinheit.
1. Sorbants de gaz à base de composés intermétalliques ayant une grande surface spécifique
de formule A
nMe
m, qui sont en équilibre thermodynamique avec le composé A formant avec lui un eutectique,
où le composant A est un métal chimiquement actif et volatil choisi dans le groupe
constitué par les métaux alcalins, les métaux alcalino-terreux, et Me est choisi dans
le groupe des métaux constitués par Ag, Al, Cu, Ga, Ge, In, Ni, Si, Sn et où
n ≥
m, sous la forme d'une carcasse de dendrite isolée, séparée d'un alliage hétérogène
rapidement solidifié à l'aide d'une sublimation de sa fraction volatile, les composés
intermétalliques de l'alliage pouvant être obtenus par un procédé comprenant les étapes
suivantes consistant à :
- mélanger et faire fondre des métaux initiaux et homogénéiser la matière fondue sous
une pression négative de gaz inerte,
- fabriquer une grenaille de coulée en trempant des gouttelettes fondues sous une
pression positive,
- obtenir des granules de type squelette par évaporation de l'excès du composant A
provenant de la grenaille de coulée sous vide.
2. Sorbants de gaz selon la revendication 1, dans lesquels les gouttelettes fondues contenant
un certain excès de composant A par rapport à une composition stoechiométrique sont
soumises à une trempe dans de l'argon liquide, puis par suite une cristallisation
d'une structure se produit laquelle consiste en une carcasse dendritique AnMem et un eutectique, qui remplit l'espace entre les bras de dendrite.
3. Sorbants de gaz selon la revendication 1 ou 2, dans lesquels le composant A dans la
formule AnMem est choisi dans le groupe constitué par Ca, Sr, Li, Mg, Ba.
4. Sorbants de gaz selon la revendication 3, dans lesquels le composant A dans la formule
AnMem est le calcium ou le strontium.
5. Sorbants de gaz selon les revendications 1 à 4, dans lesquels les composés intermétalliques
sont choisis dans le groupe constitué par Ca3Ag, Ca2Cu, Ca28Ga11, Ca3ln, Ca2Si, Ca2Ge, Ca2Sn, Sr3Ag2, SrCu, Sr8Al7, Sr8Ga7, Sr3ln, Sr2Si, Sr2Ge, Sr2Sn et SrNi.
6. Procédé de production de sorbants de gaz métalliques de haute pureté à base de composés
intermétalliques de formule

qui sont en équilibre thermodynamique avec le composant A formant avec lui un eutectique
et dans lequel A est choisi dans le groupe constitué par les métaux alcalins, les
métaux alcalino-terreux, Me est choisi dans le groupe des métaux constitués par Ag,
Al, Cu, Ga, Ge, In, Ni, Si, Sn et où
n ≥ m, en démarrant à partir de métaux ou alliages chimiquement actifs, ledit procédé comprenant
les étapes suivantes consistant à :
- mélanger et faire fondre des métaux initiaux et homogénéiser la matière fondue sous
une pression négative de gaz inerte,
- fabriquer une grenaille de coulée en trempant des gouttelettes fondues sous une
pression positive,
- obtenir des granules de type squelette par évaporation de l'excès du composant A
provenant de la grenaille de coulée sous vide,
- emballer le produit en le scellant dans un conteneur sous vide ou sous une pression
négative d'un gaz inerte.
7. Procédé selon la revendication 6, dans lequel le gaz inerte est l'argon.
8. Procédé selon la revendication 6 ou 7, dans lequel les gouttelettes fondues contenant
un certain excès de composant A par rapport à une composition stoechiométrique sont
soumises à une trempe dans de l'argon liquide, puis par suite une cristallisation
d'une structure se produit laquelle consiste en une carcasse dendritique AnMem et un eutectique, qui remplit l'espace entre les bras de dendrite.
9. Procédé selon l'une quelconque des revendications 6 à 8 précédentes, dans lequel le
composant A dans la formule AnMem est choisi dans le groupe constitué par Ca, Sr, Li, Mg, Ba.
10. Procédé selon les revendications 6 à 9, dans lequel les composés intermétalliques
sont choisis dans le groupe contenant Ca et Sr en tant que composant A dans la formule
AnMem constitué par Ca3Ag, Ca2Cu, Ca28Ga11, Ca3ln, Ca2Si, Ca2Ge, Ca2Sn, Sr3Ag2, SrCu, Sr8Al7, Sr8Ga7, Sr3ln, Sr2Si, Sr2Ge, Sr2Sn et SrNi.
11. Procédé selon l'une quelconque des revendications 6 à 10 précédentes, dans lequel
le métal A est fondu dans une atmosphère d'argon pur sous une pression d'environ 1
à 100 mbar à l'aide d'un chauffage inductif tout en maintenant sous le creuset une
pression légèrement en excès.
12. Procédé selon l'une quelconque des revendications 6 à 11 précédentes, dans lequel
les paramètres du procédé de sublimation sont définis à partir des diagrammes de phase
et des données thermodynamiques sur les alliages A - Me, dans lequel la température
de volatilisation est limitée par l'aire de sous-solides et par les pressions auxquelles
une décomposition de cristaux de AnMem n'a pas lieu.
13. Procédé selon l'une quelconque des revendications 6 à 12 précédentes, dans lequel
le traitement thermique additionnel de la grenaille de coulée consiste en une sublimation
destinée à éliminer une phase volatile A du matériau pour obtenir une structure de
type squelette de composés intermétalliques isolés.
14. Procédé selon l'une quelconque des revendications 6 à 13 précédentes, dans lequel
la condensation de l'argon liquide à une pression positive se fait dans la gamme de
pression de 1 à 5 bar afin d'obtenir un volume suffisant de liquide de trempe.
15. Appareil destiné à réaliser le procédé selon une ou plusieurs des revendications 7
à 14 précédentes, ledit appareil comprenant :
- un compartiment de charge (I) comprenant une boîte à gants et un doseur (4) destinés
à charger et mélanger des métaux ou composants initiaux,
- un compartiment de fusion (11) comprenant un dispositif de chauffage (8) et un creuset
(6), dans lequel les métaux ou composants initiaux, précédemment soumis à un dégazage
profond, sont introduits,
- un compartiment de trempe (lll), où les gouttelettes se solidifient dans de l'argon
liquide,
- un compartiment de sublimation (IV) comprenant un collecteur de particule (13),
un robinet de vapeur (11) et un analyseur de gaz.