Field of the invention
[0001] The present invention relates to recording materials with improved shelf-life.
Background of the invention.
[0002] Thermal imaging or thermography is a recording process wherein images are generated
by the use of thermal energy. Such recording materials become photothermographic upon
incorporating a photosensitive agent which after exposure to UV, visible or IR light
is capable of catalyzing or participating in a thermographic process bringing about
changes in colour or optical density.
[0003] GB-A 1,542,327 discloses a thermally developable light-sensitive sheet material,
comprising a support and (a) a silver salt of an organic acid, (b) a catalyst in an
amount capable of catalyzing the reaction in exposed areas of the material of components
(a) and (c) after imagewise exposure and heating of the material, (c) a reducing agent
for the salt (a), and (d) sulphur in an amount to reduce the colour change after processing
and to reduce thermal fogging, the components (a) to (d) being contained, separately
or together, in one or more layers coated on the support or being all present in the
support or one or more of the components being present in the support and the remainder
being in one or more layers coated thereon. The description of GB 1,542,327 includes
an exhaustive list of silver salts of an organic acid including silver palmitate.
Furthermore, D.S. Avose, V.V. Tsvetkov and V.D. Yagodovskii in Sci. Appl. Photo. volume
35, pages 587-594 published in 1994 by Gordon and Breach Science Publishers S.A. describe
the photothermographic materials based on silver bromide and silver palmitate.
[0004] US 4,273,723 discloses a process for preparing a silver salt of a fatty acid with
12 to 24 carbon atoms consisting essentially of reacting an alkali metal salt of the
fatty acid with a water-soluble silver salt, and wherein the reaction is effected
in a reaction system consisting essentially of (I) the alkali metal salt of the fatty
acid, (II) the water-soluble silver salt, (III) at least one water-soluble or partially
water-soluble C
3-C
8 alcohol and (IV) water, the volume ratio of the component (III) to the component
(IV) being 1/5 to 5/1.
[0005] GB-A 1,378,734 discloses a process of producing a silver salt of an organic carboxylic
acid conducted in the presence of a soluble mercury compound and/or a soluble lead
compound. EP-A 754 969 discloses a process for producing a suspension of particles
containing a substantially light-insensitive silver salt of an organic carboxylic
acid, comprising simultaneous metered addition of an aqueous solution or suspension
of an organic carboxylic acid or its salt; and an aqueous solution of a silver salt
to an aqueous liquid, wherein the metered addition of the aqueous solution or suspension
of the organic carboxylic acid or its salt; and/or the aqueous solution of the silver
salt is regulated by the concentration of silver ions or the concentration of anions
of the silver salt in the aqueous liquid. Research Disclosure number 17029, published
in June 1978,gives a survey of different methods of preparing organic heavy metal
salts in section II.
[0006] The association of silver palmitate with mercury or lead ions, particularly mercury
ions, according to the teaching of GB 1,378,734, is environmentally undesirable and
infringes governmental regulations.
[0007] Recording materials with prior art silver palmitate exhibit poor shelf-life, particularly
as regards increase in D
max.
Objects of the invention.
[0008] It is therefore an object of the invention to provide recording materials with an
improved shelf-life.
[0009] It is a still further object of the present invention to provide production processes
for substantially light-insensitive organic silver salt comprising silver palmitate.
[0010] Further objects and advantages of the invention will become apparent from the description
hereinafter.
Summary of the invention
[0011] Surprisingly it has been found that recording materials comprising a support and
a thermosensitive element comprising silver palmitate with a higher crystallinity
than prior art silver palmitate, an organic reducing agent therefor in thermal working
relationship therewith and a binder exhibit a marked improvement in shelf-life over
prior art recording materials with silver palmitate.
[0012] The above mentioned objects are realised with a recording material comprising a support
and a thermosensitive element comprising silver palmitate, an organic reducing agent
therefor in thermal working relationship therewith and a binder, characterized in
that the silver palmitate is not associated with mercury and/or lead ions and when
the recording material is irradiated with a copper Kα
1 X-ray source the ratio of the sum of the peak heights of the X-ray diffraction lines
attributable to silver palmitate at Bragg angles, 2Θ, of 4.01°, 6.049°, 8.031°, 10.06°,
12.08° and 14.09° to the sum of the peak heights of the X-ray diffraction lines at
Bragg angles, 2Θ, of 25.60°, 35.16° and 43.40° of NIST standard 1976, rhombohedral
Al
2O
3, determined with the same X-ray diffractometer in the same state of adjustment on
a sample of the recording material and a sample of the NIST standard 1976 cut to fit
a sample holder of the X-ray diffractometer, divided by the square root of the quantity
of silver in the recording material, expressed in g per m
2, is greater than 3.09m/g
0.5.
[0013] A production process for a dispersion of particles of substantially light-insensitive
organic silver salt including silver palmitate in a substantially solvent-free aqueous
medium is also provided according to the present invention comprising the steps of:
i) producing an aqueous dispersion of one or more organic acids including palmitic
acid and an anionic surfactant; ii) substantially neutralizing the organic acids with
aqueous alkali thereby forming organic acid salts including a palmitic acid salt;
(iii) adding an aqueous solution of a silver salt to completely convert the organic
acid salt(s) into their silver salts including silver palmitate, characterized in
that the anionic surfactant is present in a molar ratio with respect to organic acid
greater than 0.15 and the silver salt is added to produce organic silver salt(s) at
a rate between 0.025mol/mol organic silver salt(s) • min and 2.25mol/mol organic silver
salt(s) • min.
[0014] Particles of substantially light-insensitive organic silver salt containing silver
palmitate producible according to the above-mentioned process are also provided.
[0015] A recording process is further provided according to the present invention comprising
the steps of: (i) bringing an outermost layer of the above-mentioned recording material
in proximity with a heat source; and (ii) applying heat from the heat source imagewise
to the recording material while maintaining proximity to the heat source to produce
an image; and (iii) removing the recording material from the heat source.
[0016] Preferred embodiments of the invention are disclosed in the dependent claims.
Detailed description of the invention.
[0017] In a preferred embodiment of the recording process, according to the present invention,
the heat source is a thermal head with a thin film thermal head being particularly
preferred.
Substantially
[0018] By substantially light-insensitive is meant not intentionally light sensitive. By
substantially solvent-free aqueous medium is meant that solvent, if present, is present
in amounts below 10% by volume of the aqueous medium.
Thermosensitive element
[0019] The thermosensitive element, according to the present invention, comprises silver
palmitate, an organic reducing agent therefor in thermal working relationship therewith
and a binder. The element may comprise a layer system in which the ingredients may
be dispersed in different layers, with the proviso that the two ingredients are in
reactive association with one another i.e. during the thermal development process
the reducing agent must be present in such a way that it is able to diffuse to the
silver palmitate so that reduction of silver palmitate to silver can occur.
[0020] In a preferred embodiment of the present invention the thermosensitive element further
comprises a photosensitive species capable upon exposure of forming a species capable
of catalyzing reduction of the silver palmitate.
Silver palmitate characterization
[0021] The silver palmitate in the recording material, of the present invention, is characterized
in that when the recording material is irradiated with a copper Kα
1 X-ray source the ratio of the sum of the peak heights of the X-ray diffraction lines
attributable to silver palmitate at Bragg angles, 2Θ, of 4.01°, 6.049°, 8.031°, 10.06°,
12.08° and 14.09° to the sum of the peak heights of the X-ray diffraction lines at
Bragg angles, 2Θ, of 25.60°, 35.16° and 43.40° of NIST (National Institute of Standards,
Gaithersburg, MD 20899-0001, USA) standard 1976, rhombohedral Al
2O
3, determined with the same X-ray diffractometer in the same state of adjustment, divided
by the square root of the quantity of silver in the recording material, expressed
in g per m
2, is greater than 3.09 m/g
0.5, which is referred to in the detailed description of the present invention as the
crystallinity of silver palmitate. In a preferred embodiment of the present invention,
the crystallinity of silver palmitate is greater than 3.3 m/g
0.5 and in a particularly preferred embodiment is greater than 3.8 m/g
0.5.
[0022] The crystallinity of the silver palmitate in the recording material of the present
invention is obtained by determining X-ray diffraction spectra on sheets of a particular
recording material and of the NIST standard 1976 cut to fit the sample holder of the
X-ray diffractometer used, subtracting the background using standard techniques, determining
the peak heights (maxima) of the diffraction peaks, determining for the sample of
recording material the sum of the peak heights (maxima), K
material, of the XRD lines attributable to silver palmitate at Bragg angles, 2Θ, of 4.01°,
6.049°, 8.031°, 10.06°, 12.08° and 14.09° , determining for the sample of NIST standard
1976 the sum of the peak heights (maxima), K
1976, of the X-ray diffraction lines at Bragg angles, 2Θ, of 25.60°, 35.16° and 43.40°,
calculating the ratio of K
material/K
1976 for the recording material, determining the concentration of silver C
Ag present in the recording material in grams per square metre of material and finally
normalizing the ratio K
material/K
1976 with √C
Ag to give K
material/(K
1976 x √C
ag), which is a relative crystallinity for the silver palmitate in the recording material
concerned. The exact positions of the peaks attributable to silver palmitate can vary
within 0.3° of the angles given above. In such cases the peak height should be taken
as the actual peak height of the peak and not the height of the peak at the angle
given above.
[0023] The concentration of silver present in the recording material can be determined by
any known technique e.g. non-destructive methods such as X-ray fluorescence and destructive
methods such as dissolution of the silver salt followed by standard volumetric techniques
for the determination of silver, such as described in R. Belcher and A.J. Nutten,
Quantitative Inorganic Analysis, 2nd Edition, Butterworths, London (1960), pages 201-219.
Organic silver salt particles containing silver palmitate
[0024] Organic silver salt particles containing silver palmitate may contain up to 100mol%
of silver palmitate. They preferably contain at least 50mol% of silver palmitate.
Preferred substantially light-insensitive organic silver salts used in the present
invention are silver salts of organic carboxylic acids for use in the recording materials
of the present invention together with silver palmitate are silver salts of other
aliphatic carboxylic acids known as fatty acids, wherein the aliphatic carbon chain
has preferably at least 12 C-atoms, e.g. silver laurate, silver stearate, silver hydroxystearate,
silver behenate and silver arichidate. Silver salts of modified aliphatic carboxylic
acids with thioether group as described e.g. in GB-P 1,111,492 and other organic silver
salts as described in GB-P 1,439,478, e.g. silver benzoate, may likewise be used to
produce a thermally developable silver image. Combinations of different organic silver
salts may also be used in the present invention.
[0025] The silver palmitate of the present invention is not associated with mercury and/or
lead ions. This means that mercury/and or silver ions are not intentionally added
at any point during the preparation process and therefore are not intentionally associated
with the silver palmitate in the recording material of the present invention.
Preparation of aqueous dispersions of organic silver salt particles containing silver
palmitate in the substantial absence of solvent
[0026] A production process for a dispersion of particles of substantially light-insensitive
organic silver salt including silver palmitate in a substantially solvent-free aqueous
medium is provided according to the present invention comprising the steps of: i)
producing an aqueous dispersion of one or more organic acids including palmitic acid
and an anionic surfactant; ii) substantially neutralizing the organic acids with aqueous
alkali thereby forming organic acid salts including a palmitic acid salt; (iii) adding
an aqueous solution of a silver salt to completely convert the organic acid salts
into their silver salts including silver palmitate, characterized in that the anionic
surfactant is present in a molar ratio with respect to organic acid greater than 0.15
and the silver salt is added to produce organic silver salt(s) at a rate between 0.025mol/mol
organic silver salt(s) • min and 2.25mol/mol organic silver salt(s) min. In preferred
embodiments of the production process for a dispersion of particles of substantially
light-insensitive organic silver salt including silver palmitate in a substantially
solvent-free aqueous medium the anionic surfactant is present in a molar ratio with
respect to organic carboxylic acid greater than 0.25 and the silver salt is added
to produce organic silver salt(s) at a rate between 0.03mol/mol organic silver salt(s)
min and 0.7mol/mol organic silver salt(s) • min, with a molar ratio of anionic surfactant
with respect to organic acid greater than 0.3 and a rate of silver salt addition of
between 0.04mol/mol organic silver salt(s) • min and 0.3mol/mol organic silver salt(s)
• min being particularly preferred.
[0027] In a preferred embodiment step (iii) of the production process of the present invention
is carried out such that part of the solution of acid salts produced in step (ii)
of the process is present in the reaction vessel prior to silver salt solution addition
and part thereof is added simultaneously with the addition of the silver salt solution,
with about 25 to 50% of the solution of acid salts produced in step (ii) being in
the reaction vessel prior to silver salt addition being particularly preferred.
[0028] Preferred anionic surfactants for use in the above-mentioned process are alkali or
ammonium salts of an acid selected from the group consisting of: alkylsulfonic acids,
alkarylsulfonic acids, aralkylsulfonic acids, arylsulfonic acids, alkylsulfuric acids,
aralkylsulfuric acids, arylsulfuric acids, alkarylsulfuric acids and organic carboxylic
acids. Alkali or ammonium salts of alkylarylsulfonic acids are preferred with alkali
or ammonium salts of alkylbenzene sulfonic acids being particularly preferred. Suitable
anionic surfactants for use in the above-mentioned process are:
- Surfactant Nr. 1 =
- MARLON™ A-396, a sodium alkyl-phenylsulfonate from Hüls;
- Surfactant Nr. 2=
- ERKANTOL™ BX, a sodium diisopropylnaphthalenesulfonate from BAYER;
- Surfactant Nr. 3 =
- ULTRAVON™ W, a sodium arylsulfonate from Ciba-Geigy;
[0029] In the above-mentioned process the pH used is sufficiently low to avoid the oxidation
of silver ions to silver oxide or silver hydroxide for which a pH below 10 is usually
required, the process temperature is chosen such that it is above the melting point
of the organic acid(s) used, about 65°C in the case of palmitic acid, and the pocess
is carried out with stirring, the stirring rate being dependent upon: the size of
the stirrer relative to the reaction vessel, the type of stirrer used, avoidance of
silver oxide or silver hydroxide formation due to insufficient mixing and avoidance
of foaming, it usually being between 200 and 1000rpm. Furthermore, a slight excess
of an organic acid, for example 2mol% of palmitic acid, is preferred.
[0030] The size of the substantially light-insensitive organic silver salt particles containing
silver palmitate can be varied by varying the rate of silver salt addition, the concentration
of anionic surfactant and the temperature, the equivalent diameter of the particles
increasing with decreasing addition rate, decreasing anionic surfactant concentration
and increasing temperature.
[0031] In a further preferred embodiment of the above-mentioned process the dispersion of
particles of substantially light-insensitive organic silver salt containing silver
palmitate is subjected to ultrafiltration. The ultrafiltration process removes ionic
species and concentrates the dispersion of substantially light-insensitive organic
silver salt containing silver palmitate by filtration through a cartridge-filter with
a pore size sufficiently small to remove the salt produced upon the formation of the
organic silver salt without removing the silver palmitate. Cartridge-filters with
10 000 to 500 000 MW have been found to be suitable for this purpose. In order to
maintain the stability of the dispersion of substantially light-insensitive organic
silver salt containing silver palmitate during ultrafiltration it is necessary to
maintain a minimum anionic surfactant concentration, but the counterion of the anionic
surfactant can be changed, if the presence of the original counterion be undesirable
in the recording material. For example the sodium ions in Surfactant nr 1 can be replaced
by ammonium ions by washing with an ammonium nitrate solution during the ultrafiltration
process and the sodium ion concentration reduced to below 100ppm.
[0032] The above-mentioned process produces substantially light-insensitive organic silver
salt containing silver palmitate in which the silver palmitate has a crystallinity,
as defined above, greater than 3.09 m/g
0.5.
Substantially light-insensitive organic silver salt dispersions
[0033] In the case of dried particles of organic silver salt containing silver palmitate
with higher crystallinity, it has been found that recording materials, according to
the present invention, can be produced, if dispersions thereof are produced using
dispersion techniques in which the particles themselves are subjected to as little
damage as possible commensurate with achieving a satisfactory dispersion quality e.g.using
microfluidizers, ultrasonic apparatuses, rotor stator mixers etc.
Reducing agents
[0034] Suitable organic reducing agents for the reduction of organic silver salt particles
containing silver palmitate are organic compounds containing at least one active hydrogen
atom linked to O, N or C, such as is the case with, aromatic di- and tri-hydroxy compounds.
Catechol-type reducing agents, i.e. reducing agents containing at least one benzene
nucleus with two hydroxy groups (-OH) in ortho-position, such as catechol, 3-(3,4-dihydroxyphenyl)
propionic acid, 1,2-dihydroxybenzoic acid, gallic acid and esters e.g. methyl gallate,
ethyl gallate, propyl gallate, tannic acid, and 3,4-dihydroxy-benzoic acid esters
are preferred, with those described in EP-B 692 733 and EP-A 903 625 being particularly
preferred.
[0035] Other suitable reducing agents, particularly for photothermographic recording materials,
are sterically hindered phenols, bisphenols and sulfonamidophenols.
[0036] Combinations of reducing agents may also be used that on heating become reactive
partners in the reduction of the substantially light-insensitive organic silver salt
comprising silver palmitate. For example, combinations of sterically hindered phenols
with sulfonyl hydrazide reducing agents such as disclosed in US-P 5,464,738; trityl
hydrazides and formyl-phenyl-hydrazides such as disclosed in US-P 5,496,695; trityl
hydrazides and formyl-phenyl-hydrazides with diverse auxiliary reducing agents such
as disclosed in US-P 5,545,505, US-P 5.545.507 and US-P 5,558,983; acrylonitrile compounds
as disclosed in US-P 5,545,515 and US-P 5,635,339; and 2-substituted malonodialdehyde
compounds as disclosed in US-P 5,654,130.
Film-forming binders of the thermosensitive element
[0037] The film-forming binder of the thermosensitive element containing organic silver
salt particles containing silver palmitate may be all kinds of natural, modified natural
or synthetic resins or mixtures of such resins, in which the organic silver salt particles
containing silver palmitate can be dispersed homogeneously either in aqueous or solvent
media: e.g. cellulose derivatives such as ethylcellulose, cellulose esters, e.g. cellulose
nitrate, carboxymethylcellulose, starch ethers, galactomannan, polymers derived from
α,β-ethylenically unsaturated compounds such as polyvinyl chloride, after-chlorinated
polyvinyl chloride, copolymers of vinyl chloride and vinylidene chloride, copolymers
of vinyl chloride and vinyl acetate, polyvinyl acetate and partially hydrolyzed polyvinyl
acetate, polyvinyl alcohol, polyvinyl acetals that are made from polyvinyl alcohol
as starting material in which only a part of the repeating vinyl alcohol units may
have reacted with an aldehyde, preferably polyvinyl butyral, copolymers of acrylonitrile
and acrylamide, polyacrylic acid esters, polymethacrylic acid esters, polystyrene
and polyethylene or mixtures thereof.
[0038] The above mentioned binders or mixtures thereof may be used in conjunction with waxes
or "heat solvents" also called "thermal solvents" or "thermosolvents" improving the
reaction speed of the redox-reaction at elevated temperature.
Toning agent
[0039] In order to obtain a neutral black image tone in the higher densities and neutral
grey in the lower densities the thermosensitive element contains preferably in admixture
with the organic silver salt particles containing silver palmitate and reducing agents
a so-called toning agent known from thermography or photothermography.
[0040] Suitable toning agents are the phthalimides and phthalazinones within the scope of
the general formulae described in US-P 4,082,901 and those described in US-P 3,074,809,
3,446,648 and 3,844,797. Other particularly useful toning agents are the heterocyclic
toner compounds of the benzoxazine dione or naphthoxazine dione type as disclosed
in GB-P 1,439,478, US-P 3,951,660 and US-P 5,599,647.
stabilisers and antifoggants
[0041] In order to obtain improved shelf-life and reduced fogging, stabilizers and antifoggants
may be incorporated into the recording materials of the present invention.
Other additives
[0042] The recording material may contain in addition to the ingredients mentioned above
other additives such as free fatty acids, surface-active agents, antistatic agents,
e.g. non-ionic antistatic agents including a fluorocarbon group as e.g. in F
3C(CF
2)
6CONH(CH
2CH
2O)-H, silicone oil, e.g. BAYSILONE™ Öl A (BAYER AG, GERMANY), ultraviolet light absorbing
compounds, white light reflecting and/or ultraviolet radiation reflecting pigments
and/or optical brightening agents.
Support
[0043] The support for the thermosensitive element according to the present invention may
be transparent, translucent or opaque, e.g. having a white light reflecting aspect
and is preferably a thin flexible carrier e.g. polypropylene, polycarbonate or polyester,
e.g. polyethylene terephthalate.
[0044] The support may be in sheet, ribbon or web form and subbed if need be to improve
the adherence to the thereon coated thermosensitive element. The support may be made
of an opacified resin composition. Should a transparent base be used, the base may
be colourless or coloured, e.g. having a blue colour. One or more backing layers may
be provided to control physical properties such as curl and static.
Outermost layer
[0045] The outermost layer of the recording material may in different embodiments of the
present invention be the outermost layer of the thermosensitive element, a protective
layer applied to the thermosensitive element or a layer on the opposite side of the
support to the thermosensitive element.
Protective layer
[0046] According to a preferred embodiment of the recording material, according to the present
invention, the thermosensitive element is provided with a protective layer to avoid
local deformation of the thermosensitive element and to improve resistance against
abrasion.
[0047] The protective layer preferably comprises a binder, which may be solvent-soluble,
solvent-dispersible, water-soluble or water-dispersible. Among the solvent-soluble
binders polycarbonates as described in EP-A 614 769 are particularly preferred. However,
water-soluble or water-dispersible binders are preferred for the protective layer,
as coating can be performed from an aqueous composition and mixing of the protective
layer with the immediate underlayer can be avoided by using a solvent-soluble or solvent-dispersible
binder in the immediate underlayer.
[0048] A protective layer according to the present invention may comprise in addition a
thermomeltable particle optionally with a lubricant present on top of the protective
layer as described in WO 94/11199. In a preferred embodiment at least one solid lubricant
having a melting point below 150°C and at least one liquid lubricant in a binder is
present, wherein at least one of the lubricants is a phosphoric acid derivative.
Crosslinking agents for outermost layer
[0049] The outermost layer according to the present invention may be crosslinked. Crosslinking
can be achieved by using crosslinking agents such as described in WO 95/12495 for
protective layers, e.g. tetra-alkoxysilanes, polyisocyanates, zirconates, titanates,
melamine resins etc., with tetraalkoxysilanes such as tetramethylorthosilicate and
tetraethylorthosilicate being preferred.
Matting agents for outermost layer
[0050] The outermost layer of the recording material according to the present invention
may comprise a matting agent. Suitable matting agents are described in WO 94/11198
and include e.g. talc particles and optionally protrude from the outermost layer.
Lubricants for outermost layer
[0051] Solid or liquid lubricants or combinations thereof are suitable for improving the
slip characteristics of the recording materials according to the present invention.
Preferred solid lubricants are thermomeltable particles such as those described in
WO 94/11199.
Photosensitive species
[0052] A preferred photosensitive species capable upon exposure of forming species capable
of catalyzing reduction of the silver palmitate of the present invention is silver
halide.
[0053] The photosensitive silver halide used in the present invention may be employed in
a range of 0.1 to 100 mol percent; preferably, from 0.2 to 80 mol percent; particularly
preferably from 0.3 to 50 mol percent; especially preferably from 0.5 to 35 mol %;
and especially from 1 to 12 mol % of substantially light-insensitive organic silver
salt.
[0054] The silver halide may be any photosensitive silver halide such as silver bromide,
silver iodide, silver chloride, silver bromoiodide, silver chlorobromoiodide, silver
chlorobromide etc. The silver halide may be in any form which is photosensitive including,
but not limited to, cubic, orthorhombic, tabular, tetrahedral, octagonal etc. and
may have epitaxial growth of crystals thereon.
[0055] The silver halide used in the present invention may be employed without modification.
However, it may be chemically sensitized with a chemical sensitizing agent such as
a compound containing sulphur, selenium, tellurium etc., or a compound containing
gold, platinum, palladium, iron, ruthenium, rhodium or iridium etc., a reducing agent
such as a tin halide etc., or a combination thereof. The details of these procedures
are described in T.H. James, "The Theory of the Photographic Process", Fourth Edition,
Macmillan Publishing Co. Inc., New York (1977), Chapter 5, pages 149 to 169.
Spectral sensitizers
[0056] The thermosensitive element, according to the present invention, may contain an infra-red
sensitizer, an ultra-violet light sensitizer or a visible light sensitizer. Suitable
sensitizers include cyanine, merocyanine, styryl, hemicyanine, oxonol, hemioxonol
and xanthene dyes. According to the present invention the thermosensitive element
further includes a supersensitizer.
Antihalation dyes
[0057] In addition to the ingredients, the recording materials used in the present invention
may also contain antihalation or acutance dyes which absorb light which has passed
through the photosensitive thermally developable photographic material, thereby preventing
its reflection. Such dyes may be incorporated into the photosensitive thermally developable
photographic material or in any other layer of the photographic material of the present
invention.
Coating
[0058] The coating of any layer of the recording material of the present invention may proceed
by any coating technique e.g. such as described in Modern Coating and Drying Technology,
edited by Edward D. Cohen and Edgar B. Gutoff, (1992) VCH Publishers Inc. 220 East
23rd Street, Suite 909 New York, NY 10010, U.S.A.
Thermographic processing
[0059] Thermographic imaging is carried out by the image-wise application of heat either
in analogue fashion by direct exposure through an image of by reflection from an image,
or in digital fashion pixel by pixel either by using an infra-red heat source, for
example with a Nd-YAG laser or other infra-red laser, with a thermographic material
preferably containing an infra-red absorbing compound, or by direct thermal imaging
with a thermal head.
[0060] In thermal printing image signals are converted into electric pulses and then through
a driver circuit selectively transferred to a thermal printhead. The thermal printhead
consists of microscopic heat resistor elements, which convert the electrical energy
into heat via Joule effect. Such thermal printing heads may be used in contact or
close proximity with the recording material. The operating temperature of common thermal
printheads is in the range of 300 to 400°C and the heating time per picture element
(pixel) may be less than 1.0ms, the pressure contact of the thermal printhead with
the recording material being e.g. 200-500g/cm
2 to ensure a good transfer of heat.
[0061] In order to avoid direct contact of the thermal printing heads with the outermost
layer on the same side of the support as the thermosensitive element when this outermost
layer is not a protective layer, the image-wise heating of the recording material
with the thermal printing heads may proceed through a contacting but removable resin
sheet or web wherefrom during the heating no transfer of recording material can take
place.
[0062] Activation of the heating elements can be power-modulated or pulse-length modulated
at constant power. The image-wise heating can be carried out such that heating elements
not required to produce an image pixel generate an amount of heat (H
e) in accordance with the following formula: 0.5 H
D < H
e < H
D wherein H
D represents the minimum amount of heat required to cause visible image formation in
the recording material.
[0063] EP-A 654 355 discloses a method for making an image by image-wise heating by means
of a thermal head having energizable heating elements, wherein the activation of the
heating elements is executed duty cycled pulsewise. EP-A 622 217 discloses a method
for making an image using a direct thermal imaging element producing improvements
in continuous tone reproduction.
[0064] Image-wise heating of the recording material can also be carried out using an electrically
resistive ribbon incorporated into the material. Image- or pattern-wise heating of
the recording material may also proceed by means of pixel-wise modulated ultra-sound.
Photothermographic processing
[0065] Photothermographic recording materials, according to the present invention, may be
exposed with radiation of wavelength between an X-ray wavelength and a 5 microns wavelength
with the image either being obtained by pixel-wise exposure with a finely focused
light source, a UV, visible or IR wavelength laser or a light emitting diode or by
direct exposure to the object itself or an image therefrom with appropriate illumination.
[0066] For the thermal development of image-wise exposed photothermographic recording materials,
according to the present invention, any sort of heat source can be used that enables
the recording materials to be uniformly heated to the development temperature in a
time acceptable for the application concerned.
Industrial application
[0067] Thermographic and photothermographic imaging can be used for the production of transparencies
and reflection type prints. Application of the present invention is envisaged in the
fields of both graphics images requiring high contrast images with a very steep dependence
of print density upon applied dot energy and continuous tone images requiring a weaker
dependence of print density upon applied dot energy, such as required in the medical
diagnostic field. In the hard copy field recording materials on a white opaque base
are used, whereas in the medical diagnostic field black-imaged transparencies are
widely used in inspection techniques operating with a light box.
[0068] The invention is illustrated hereinafter by way of invention examples and comparative
examples. The percentages and ratios given in these examples are by weight unless
otherwise indicated. The ingredients used in the invention and comparative examples,
other than those mentioned above, are:
- as organic silver salt:
- AgPa =
- silver palmitate;
- as binders:
- K7598 =
- type K7598, a calcium-free gelatin from AGFA-GEVAERT GELATINEFABRIEK vorm. KOEPFF
& SÖHNE;
- K17881 =
- type K17881, a calcium-free gelatine from AGFA-GEVAERT GELATINEFABRIEK vorm. KOEPFF
& SÖHNE;
- LATEX 01 =
- a 24% by weight aqueous latex of a polymer produced by copolymerizing a monomer mixture
consisting of 42% by weight of n-butyl acrylate, 53% by weight of styrene, 2% by weight
of itaconic acid and 3% by weight of CH2=C(CH3)CONH-(CH2)10-CONHC6H4-p-SO3K followed by desalting and adjusting to pH 5.4 with ammonia;
- as reducing agent:
- R01 =
- ethyl 3,4-dihydroxybenzoate;
- as toning agent:
- T01 =
- 7-(ethylcarbonato)-benzo[e][1,3]oxazine-2,4-dione (see formula I below)

COMPARATIVE EXAMPLES 1 & 2
preparation of prior art silver palmitate according to RD 17029
[0069] In the preparation of Types I & II silver palmitate solution, A was first prepared
by adding 0.15 moles of solid sodium hydroxide to a dispersion of 0.1575 moles and
0.176 moles of palmitic acid respectively in 1L of deionized water at 68°C thereby
producing a solution of sodium palmitate with a pH of ca. 9. Solution B, 250mL of
0.6M aqueous silver nitrate acidified with 0.4g of 65% nitric acid at a temperature
of 58°C, was then added with vigorous stirring to solution A in 15s while maintaining
a temperature of 68°C. After 1 minute the resulting suspension of silver palmitate
was cooled to room temperature and had a pH of ca. 5 and a UAg of ca. 350mV. The silver
palmitate was filtered off under reduced pressure, washed twice each time with about
5L of deionized water and dried in a forced air drying cupboard at 40°C.
preparation of silver palmitate dispersion
[0070] The quantities of type I and type II silver palmitates given in table 1 were dispersed
with the quantities of deionized water, and 10% solution of Surfactant Nr 1 given
in table 1 first with an ULTRATURRAX™ mixer to obtain a predispersion and then through
a MICROFLUIDICS™ M-110Y high pressure microfluidizer at a jet pressure of 350 bar
to produce the final dispersions with a concentration of 10.4%.
Table 1
| Comparative example nr |
silver palmitate |
quantity of deionized water g] |
quantity of 10% solution of Surfactant Nr 1 [g] |
| |
type |
quantity [g] |
|
|
| 1 |
I |
54 |
346 |
100 |
| 2 |
II |
58 |
342 |
100 |
preparation of a tone modifier dispersion
[0071] The tone modifier dispersion was prepared by first dissolving 11g of K7598 in 69g
of deionized water by first adding the gelatin, then allowing the gelatin to swell
for 30 minutes and finally heating to 50°C. 20 g of T01 was added with ULTRA-TURRAX™
stirring to this gelatin solution at 50°C, and the stirring continued for a further
5 minutes. Finally the resulting dispersion was pumped through a DYNOMILL™ for 2 hours
to produce the final tone modifier dispersion containing: 20% of T01 and 8.8% of gelatin.
thermosensitive element
[0072] The thermosensitive emulsion was produced as follows: 2.341g of K7598 was allowed
to swell for 30 minutes with deionized water (for quantity used in the preparation
of the thermographic emulsion for the particular recording material see table 2) and
the resulting gel heated to 36°C, then with stirring the following ingredients were
added: 5.699g of the tone modifier dispersion at 36°C, then 8.120g of LATEX 01 followed
by 5 minutes stirring, the corresponding silver palmitate dispersion (for quantity
and silver palmitate concentration therein for the thermosensitive emulsion for the
particular recording material see table 2) followed by 5 minutes stirring, 12.35g
of a 10.95% ethanol solution of R01 at 45°C and finally 2.880g of a 3.7% aqueous solution
of formaldehyde.
[0073] The thermosensitive dispersions were doctor blade-coated onto a 175µm subbed PET
support and dried for 10 minutes at 50°C thereby producing the thermosensitive elements
of COMPARATIVE EXAMPLES 1 & 2.
Table 2
| Comparative example number |
quantity of water [g] |
silver palmitate dispersion |
| |
|
AgPa type |
concentration (%) |
quantity [g] |
| 1 |
20.120 |
I |
10.397 |
38.490 |
| 2 |
20.150 |
II |
10.406 |
38.460 |
determination of silver palmitate crystallinity in the recording materials
[0074] The crystallinity of the silver palmitate in the recording materials of COMPARATIVE
EXAMPLES 1 & 2 was determined as follows:
i) 30mm diameter samples of the recording materials of COMPARATIVE EXAMPLES 1 & 2
and of NIST standard 1976 were cut from larger sheets using a punch;
ii) X-ray diffraction scans were then carried out using a SIEMENS D5000 X-ray diffractometer
equipped with a copper Kα1 X-ray source operating at 40keV and a current of 30mA with the samples in the sample
holder thereof to scan the samples of COMPARATIVE EXAMPLES 1 & 2 and NIST standard
1976, with the same X-ray diffractometer in exactly the same state of adjustment,
in steps of 0.05 degrees at a rate of 1 step/s between Bragg angles, 2Θ, of 2° and
50° and the data processed using SIEMENS DIFFRAC™ AT software to produce X-ray diffraction
spectra corrected for background and exact peak heights (maxima) of each X-ray diffraction
peak;
iii) the Kmaterial values were then determined for the recording materials of COMPARATIVE EXAMPLES 1
& 2 by adding up the peak heights (maxima) of the X-ray diffraction lines attributable
to silver palmitate at Bragg angles, 2Θ, of 4.01°, 6.049°, 8.031°, 10.06°, 12.08°
and 14.09°;
iv) the K1976 value was determined for NIST standard 1976 by adding up the peak heights (maxima)
of the X-ray diffraction lines at Bragg angles, 2Θ, of 25.60°, 35.16° and 43.40°;
v) the weights of silver in g/m2, CAg, of the recording materials of COMPARATIVE EXAMPLES 1 & 2 were determined using a
PHILIPS PW2400 wavelength dispersive X-ray fluorescence apparatus with a chromium
Kα X-ray source operating at 60keV and a current of 50mA, which had been calibrated
for silver using silver-containing samples for which the silver concentrations had
been determined using standard volumetric titration techniques; and
vi) the crystallinity values for the silver palmitate present in the recording materials
of COMPARATIVE EXAMPLES 1 & 2 were determined using the expression: Kmaterial/(K1976 x √CAg).
The crystallinity values for the silver palmitate in the recording materials of COMPARATIVE
EXAMPLES 1 & 2 are given in Table 3.
thermographic printing
[0075] The printer was equipped with a thin film thermal head with a resolution of 300 dpi
and was operated with a line time of 19ms (the line time being the time needed for
printing one line). During this line time the printhead received constant power. The
average printing power, being the total amount of electrical input energy during one
line time divided by the line time and by the surface area of the heat-generating
resistors, was 1.6 mJ/dot and was sufficient to obtain maximum optical density in
each of the thermographic materials of COMPARATIVE EXAMPLES 1 & 2.
[0076] During printing of the recording materials of COMPARATIVE EXAMPLES 1 & 2 the printhead
was separated from the imaging layer by a thin intermediate material contacted with
a slipping layer of a separable 5µm thick polyethylene terephthalate ribbon coated
successively with a subbing layer, heat-resistant layer and the slipping layer (anti-friction
layer) giving a ribbon with a total thickness of 6µm.
[0077] The maximum densities, D
max, and minimum densities, D
min, of the prints given in table 3 were measured through a visible filter with a MACBETH™
TR924 densitometer in the grey scale steps corresponding to data levels of 64 and
0 respectively and are given in table 3 for COMPARATIVE EXAMPLES 1 & 2.
shelf-life test
[0078] The shelf-life of the recording materials of COMPARATIVE EXAMPLES 1 & 2 was evaluated
on the basis of the changes in minimum and maximum density measured through a visible
filter using a MACBETH™ TR924 densitometer upon thermographic printing after heating
the recording materials at 57°C in a relative humidity of 34% for 3 days in the dark.
The results are given in table 3.
Table 3
| Comparative example number |
Silver palmitate |
fresh print characteristics |
shelf-life
ΔDmax/ΔDmin (vis) after 3d at 57°C/34%RV |
| |
type |
coating weight [g/m2] |
crystallinity |
Dmax(vis) |
Dmin(vis) |
|
| 1 |
I |
3.40 |
2.45 |
3.41 |
0.07 |
+0.48/ +0.01 |
| 2 |
II |
3.60 |
1.62 |
3.57 |
0.07 |
+0.33/ +0.01 |
COMPARATIVE EXAMPLE 3
preparation of prior art silver palmitate according to EP-A 754 969
[0079] A sodium palmitate solution was prepared by dissolving with stirring 24.5 g of sodium
palmitate in a mixture of 80 mL of 2-propanol and 288 mL of deionized water at 70°C
to give a 6.53% by weight solution.
[0080] The silver palmitate synthesis was carried out at a constant UAg of 400mV as follows:
to a stirred solution of 30g of K17881 in 1000mL of distilled water at 71°C in a double
walled reactor, several drops of a 2.94M aqueous solution of silver nitrate were added
to adjust the UAg at the start of the reaction to 400mV and then 340g of the above-mentioned
sodium palmitate solution at a temperature of 75°C was metered into the reactor at
a rate of 48mL/min and simultaneously a 3.792% by weight aqueous solution of silver
nitrate was metered into the reactor, its addition rate being controlled by the quantity
of the silver nitrate solution necessary to maintain a UAg of 400±5mV in the dispersing
medium in the reactor. Both the sodium palmitate and silver nitrate solutions were
added to the dispersing medium via small diameter tubes positioned just under the
surface of the dispersing medium. By the end of the addition step 0.080moles of sodium
behenate and 0.094 moles of silver nitrate had been added. The mixture was then stirred
for a further 30 minutes. The resulting silver palmitate dispersion contained 1.63%
by weight of silver behenate and 1.69% by weight of K17881.
[0081] 0.25g of K17881 was added per 100g of silver palmitate dispersion together with 6%
of Surfactant Nr. 3 and the resulting dispersion doctor blade coated to a silver palmitate
coverage of 3.23g/m
2 after drying. The crystallinity of the silver palmitate in the resulting material
was determined as described for COMPARATIVE EXAMPLES 1 & 2 to be 2.99, see table 4.
Table 4
| Comparative example number |
Silver palmitate |
| |
type |
coating weight [g/m2] |
crystallinity |
| 3 |
VI |
3.23 |
2.99 |
Therefore the silver salt production process of EP-A 754 969 produces silver palmitate
with a crystallinity, as determined according to the present invention, below 3.09
m/g
0.5 and hence outside the disclosure of the present invention.
INVENTION EXAMPLE 1
preparation of silver palmitate
[0082] The synthesis of type III silver palmitate was carried out in the dark in a thermostatted
stainless steel vessel with pH, pAg and temperature being continually monitored. The
reagents were brought to the same temperature as the vessel prior to addition and
were added at a known rate by a pumping system controlled by a computer with appropriate
software.
[0083] For the syntheses of silver palmitate the following programme settings were used:
- heating to 65°C;
- addition of a known quantity of a 0.255 mol/L solution of NaOH;
- addition of a known quantity of a 0.401 mol/L solution of AgNO3;
- all steps with pre and post washing.
[0084] Palmitic acid was dissolved in ethanol at 65°C. 0.255N aqueous sodium hydroxide was
added until the equivalence point was attained to obtain the sodium salt followed
by a 0.401M aqueous solution of silver nitrate to complete conversion to form silver
palmitate. The silver palmitate was then filtered off under reduced pressure, washed
twice with deionized water and dried.
[0085] 75g of dried type III silver palmitate was dispersed in 75g of a 10% aqueous solution
of Surfactant Nr 1 by first producing a coarse suspension using an ULTRATURRAX™ and
then dispersing the resulting coarse suspension in a MICROFLUIDICS™ M-110Y high pressure
microfluidizer at a jet pressure of at 350 bar to produce the final dispersion with
20.173% silver palmitate.
thermosensitive element
[0086] The thermosensitive elements of the recording materials of INVENTION EXAMPLES 1 was
produced as described for the thermosensitive element of the recording material of
COMPARATIVE EXAMPLES 1 & 2 except that the quantity of deionized water, the silver
palmitate type, concentration and quantity of dispersion used were as given in table
5 below.
Table 5
| Invention example number |
quantity of water [g] |
silver palmitate dispersion |
| |
|
AgPa type |
concentration (%) |
quantity [g] |
| 1 |
18.18 |
III |
20.17 |
19.810 |
[0087] The crystallinity value for the silver palmitate present in the recording materials
of INVENTION EXAMPLE 1 determined as described for COMPARATIVE EXAMPLES 1 & 2 is given
in Table 6.
thermographic evaluation
[0088] Thermographic printing with the recording materials of INVENTION EXAMPLE 3 and the
evaluation thereof were carried out as described for the recording materials of COMPARATIVE
EXAMPLES 1 & 2. The evaluation results are summarized in Table 6.
Table 6
| Invention example number |
Silver palmitate |
fresh print characteristics |
shelf-life
ΔDmax/ΔDmin(vis) after 3d at 57°C/34%RV |
| |
type |
coating weight [g/m2] |
crystallinity |
Dmax (vis) |
Dmin (vis) |
|
| 1 |
III |
3.40 |
3.10 |
3.51 |
0.07 |
+0.23/+0.01 |
These results show a considerable improvement in the shelf-life of recording materials
of INVENTION EXAMPLE 1 compared with the recording materials of COMPARATIVE EXAMPLES
1 & 2 using prior art silver palmitate as demonstrated by a reduced increase in D
max while maintaining D
min-stability. The recording materials of INVENTION EXAMPLE 1 only differs from those
of COMPARATIVE EXAMPLES 1 & 2 in that they contain silver palmitate with an increased
crystallinity. This demonstrates the beneficial effect of increased silver palmitate
crystallinity on the stability of recording materials.
INVENTION EXAMPLES 2 & 3
preparation of silver palmitate dispersions in an aqueous medium in the absence of
organic solvent using a single jet process
[0089] Aqueous dispersions of the silver palmitate types IV & V were produced as follows:
i) dispersing palmitic acid (for quantity see table 7) with stirring at a given temperature
(see table 7) in a mixture of deionized water (for quantity see table 7) and a 10%
solution of Surfactant Nr 1 (for quantity see table 3) to produce a dispersion with
a pH of about 4.2;
ii) then adding a quantity of sodium hydroxide as a 2M aqueous solution (for quantity
see table 7) at the same temperature as the palmitic acid dispersion with stirring
over a particular time (see table 7 for the time of addition) thereby producing a
clear solution with a pH of about 9.2 substantially containing sodium palmitate;
iii) then metered addition of a particular quantity of silver nitrate (same quantity
in moles as for sodium hydroxide) as a 1M aqueous solution at the same temperature
as the palmitic acid dispersion with stirring at a particular rate (for rate given
as moles/moles silver palmitate • min see table 7) to convert the sodium palmitate
completely into silver palmitate as a dispersion with a pH and UAg as given in table
7; and
iv) ultrafiltration with a 500000 MW polysulfone cartridge filter at room temperature
to concentrate the resulting silver palmitate dispersion (final AgPa-concentration
and residual conductivity in mS/cm are given in table 8).
The volume average particle size as determined by a Coulter LS230 diffractometer
is also given in table 8.
Table 7
| Invent ion example nr |
AgPa type |
quantity of palmitic acid [moles] |
quantity of deionized water [L] |
quantity of 10% sol. of Surfactant Nr 1 [L] |
temperature [°C] |
quantity of NaOH & AgNO3 [moles] |
addition time of 2M NaOH [min] |
mol AgNO3/mol AgPa • min |
pH |
UAg [mV] |
| 2 |
IV |
1.507 |
2.495 |
2.027 |
63 |
1.477 |
9.75 |
0.0650 |
6.40 |
+320 |
| 3 |
V |
0.4 |
0.662 |
0.538 |
63 |
0.392 |
10 |
0.25 |
5.76 |
+405 |
Table 8
| Invention example nr |
AgPa type |
ultrafiltration |
average particle size [nm] |
| |
|
residual conductivity [mS/cm] |
% AgPa dispersion |
|
| 2 |
IV |
3.4 |
15.85 |
725 |
| 3 |
V |
3.45 |
15.52 |
|
[0090] These dispersions of silver palmitate were directly used in the preparation of the
recording materials of INVENTION EXAMPLES 2 & 3.
thermosensitive element
[0091] The thermosensitive elements of the recording materials of INVENTION EXAMPLES 2 &
3 were produced as described for the thermosensitive element of the recording material
of COMPARATIVE EXAMPLES 1 & 2 except that the quantity of deionized water used, the
silver palmitate type, concentration and quantity of dispersion used were as given
in table 9 below.
Table 9
| Invention example number |
quantity of water [g] |
silver palmitate dispersion |
| |
|
AgPa type |
concentration (%) |
quantity [g] |
| 2 |
13.397 |
IV |
15.85 |
25.213 |
| 3 |
12.820 |
V |
15.49 |
25.790 |
[0092] The crystallinity values for the silver palmitate present in the recording materials
of INVENTION EXAMPLES 2 & 3 determined as described for COMPARATIVE EXAMPLES 1 & 2
are given in Table 10.
thermographic evaluation
[0093] Thermographic printing with the recording materials of INVENTION EXAMPLES 2 & 3 and
the evaluation thereof were carried out as described for the recording material of
COMPARATIVE EXAMPLES 1 & 2. The evaluation results are summarized in Table 10.
[0094] These results show a considerable improvement in the shelf-life of recording materials
of INVENTION EXAMPLES 2 & 3 compared with the recording materials of COMPARATIVE EXAMPLES
1 & 2 using prior art silver palmitate as demonstrated by a reduced increase in D
max while maintaining D
min-stability. The recording materials of INVENTION EXAMPLES 2 & 3 only differ from those
of COMPARATIVE EXAMPLES 1 & 2 in that they contain silver palmitate with an increased
crystallinity. This demonstrates the beneficial effect of increased silver palmitate
crystallinity on the stability of recording materials.
Table 10
| Invention example number |
Silver palmitate |
fresh print characteristics |
shelf-life
ΔDmax/ΔDmin (vis) after 3d at 57°C/34%RV |
| |
type |
coating weight [g/m2] |
crystallinity |
Dmax (vis) |
Dmin (vis) |
|
| 2 |
IV |
3.17 |
5.81 |
3.16 |
0.07 |
-0.17/+0.01 |
| 3 |
V |
2.90 |
3.99 |
3.04 |
0.08 |
+0.08/0.00 |
[0095] Having described in detail preferred embodiments of the current invention, it will
now be apparent to those skilled in the art that. numerous modifications can be made
therein without departing from the scope of the invention as defined in the following
claims.
1. Ein Aufzeichnungsmaterial mit einem Träger und einem wärmeempfindlichen Element, das
Silberpalmitat, ein organisches Reduktionsmittel für das Silbersalz in thermischer
wirksamer Beziehung dazu und ein Bindemittel enthält, dadurch gekennzeichnet, daß das Silberpalmitat nicht mit Quecksilberund/oder Bleiionen kombiniert wird und bei
Bestrahlung des Aufzeichnungsmaterials mit einer Kupfer-Kα1-Röntgenstrahlungsquelle das in g/m2 ausgedrückte Verhältnis der Summe der Spitzenhöhen der Röntgenbeugungslinien von
Silberpalmitat bei Braggschen Winkeln, 2Θ, von 4,01°, 6,049°, 8,031°, 10,06°, 12,08°
und 14,09° zur Summe der Spitzenhöhen der Röntgenbeugungslinien bei Braggschen Winkeln,
2Θ, von 25,60°, 35,16° und 43,40°, die nach der NIST-Norm 1976 unter Verwendung von
rhomboedrischem Al2O3 erhalten sind, wobei die Ermittlung mit demselben Röntgendiffraktometer mit gleichen
Einstellungen auf einem Muster des Aufzeichnungsmaterials und einem Muster nach der
NIST-Norm 1976 vorgenommen wird und die Muster so zugeschnitten sind, das sie in den
Musterhalter des Röntgendiffraktometers passen, geteilt durch die Quadratwurzel der
Menge Silber im Aufzeichnungsmaterial, mehr als 3,09 m/g0,5 beträgt.
2. Aufzeichnungsmaterial nach Anspruch 1, dadurch gekennzeichnet, daß das in g/m2 ausgedrückte Verhältnis, geteilt durch die Quadratwurzel der Menge Silber im Aufzeichnungsmaterial,
mehr als 3,3 m/g0,5 beträgt.
3. Aufzeichnungsmaterial nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, daß das wärmeempfindliche Element mit einer Schutzschicht versehen ist.
4. Aufzeichnungsmaterial nach einem der vorstehenden Ansprüche, dadurch gekennzeichnet, daß das wärmeempfindliche Element weiterhin eine strahlungsempfindliche Substanz enthält,
die bei Belichtung eine Substanz zu bilden vermag, die in der Lage ist, die Reduktion
des Silberpalmitats zu katalysieren.
5. Ein durch die nachstehenden Schritte gekennzeichnetes Verfahren zur Herstellung einer
Dispersion von Teilchen von wesentlich lichtunempfindlichem organischem Silberpalmitat
enthaltendem Silbersalz in einem wesentlich lösungsmittelfreien wäßrigen Medium :
(i) Anfertigung einer wäßrigen Dispersion einer oder mehrerer organischer Säuren,
einschließlich Palmitinsäure, und eines anionischen Tensids,
(ii) weitgehendes Neutralisieren der organischen Säuren mit wäßrigem Alkali, wobei
organische Säuresalze, einschließlich eines Palmitinsäuresalzes, gebildet werden,
(iii) Zugabe einer wäßrigen Lösung eines Silbersalzes, um das (die) organische(n)
Säuresalz(e) völlig in deren Silberpalmitat enthaltende Silbersalze umzuwandeln,
dadurch gekennzeichnet, daß das anionische Tensid in einem Molverhältnis, bezogen auf die organische Säure, von
mehr als 0,15 enthalten ist und das Silbersalz zugegeben wird, um bei einer Rate zwischen
0,025 Mol/Mol organische(s) Silbersalz(e) Min. und 2,25 Mol/Mol organische(s) Silbersalz(e)
• Min. ein oder mehrere organische Silbersalze zu bilden.
6. Herstellungsverfahren nach Anspruch 5, dadurch gekennzeichnet, daß das anionische Tensid ein Alkali- oder Ammoniumsalz einer Alkarylsulfonsäure ist.
7. Herstellungsverfahren nach Anspruch 6, dadurch gekennzeichnet, daß das Alkali- oder Ammoniumsalz einer Alkarylsulfonsäure ein Alkali- oder Ammoniumsalz
einer Alkylbenzolsulfonsäure ist.
8. Herstellungsverfahren nach einem der Ansprüche 5 bis 7, das einen weiteren Schritt
umfaßt, in dem die Dispersion der Teilchen des (der) wesentlich lichtunempfindlichen
organischen silberpalmitathaltigen Silbersalze(s) ultrafiltriert wird.
9. Teilchen eines wesentlich lichtunempfindlichen organischen silberpalmitathaltigen
Silbersalzes, die nach einem der Ansprüche 5 bis 8 anfertigbar sind.
10. Ein durch die nachstehenden Schritte gekennzeichnetes Aufzeichnungsverfahren
(i) Anordnen einer Außenschicht eines nach einem der Ansprüche 1 bis 3 definierten
Aufzeichnungsmaterials in der Nähe einer Heizquelle,
(ii) bildmäßige Beaufschlagung des Aufzeichnungsmaterials mit von der Heizquelle gelieferter
Wärme zur Herstellung eines Bildes, wobei das Aufzeichnungsmaterial in der Nähe der
Heizquelle gehalten wird, und
(iii) Entfernen des Aufzeichnungsmaterials von der Heizquelle.
11. Aufzeichnungsverfahren nach Anspruch 10, dadurch gekennzeichnet, daß die Heizquelle ein Dünnfilmthermokopf ist.