[0001] A layer comprising 1) an oxidizing ion and 2) leuco dye or bleachable dye in a binder
is useful as either an imaging layer or as a heat-bleachable antihalation layer. The
antihalation layer is particularly useful in photothermographic systems where the
development temperatures acts to bleach the dye.
[0002] It is known from Chemical Abstracts, Vol. 82, No. 20, page 488, Abstract 132141 z
to provide a thermographic system comprising a leuco dye, and a nitrate or nitrite
as a latent colour developer which releases an oxidizing agent upon heating to oxidize
the leuco dye to a coloured form. In Derwent Patents Report, Vol. 79, No. 17, Section
C4 (J79009062) is disclosed a heat sensitive copying material comprising colour developing
agent, reducing agent and nitric acid or a nitrate, in which colour is developed by
exposure to IR radiation.
[0003] It has been found that the addition of an acid to an imageable layer comprising a
leuco dye or a bleachable dye and a nitrate salt, can reduce the concentration of
nitrate ion required for satisfactory colour formation (by oxidation of a leuco dye)
or bleaching (by oxidation of a bleachable dye) upon heating the layer.
[0004] According to the present invention there is provided an imageable layer comprising
a polymeric binder, and within said binder a leuco dye or bleachable dye, and a nitrate
salt, the nitrate ion of which being present in a ratio of at least 0.1 moles/mole
of dye, characterised in that an acid is present within the binder and said nitrate
salt in said binder is capable of liberating a sufficient quantity of oxidizing agent
selected from HN0
3, NO, N0
2 and N
20
4 when heated to up 200°C for 60 seconds to oxidize said bleachable dye to a different
colour or colourless state or oxidize said leuco dye to a coloured state.
[0005] The present invention may be practiced in any polymeric binder system having the
necessary active ingredients therein. These ingredients comprise leuco dyes or bleachable
dyes and a, preferably non-dye-reactive (as herein defined), nitrate salt. The active
agents also include an acid which supplies hydrogen ion. A binder material containing
these ingredients can be colourised or decolourised locally by heating portions of
the binder layer or generally decolourised by heating the entire layer. The presence
of the acidic material accelerates the decolourisation phenomenon.
The Binder
[0006] Any polymeric binder may be used in the practice of the present invention. The pH
of the resin has been found to affect only the speed of the discolourising effect,
If the speed is not important, any resin may be used. Organic polymeric resins are
generally preferred, more particularly thermoplastic resins although thermoset resins
may be used. Where speed is more important, the more acidic resins should be used
to decrease the pH and increase the rate of oxidation or decolorizing. Such resins
as polyvinyl acetals, polyesters, polyvinyl resins, polyvinylpyrolidone, polyesters,
polycarbonates, polyamides, polyvinyl butyral, polyacrylates, cellulose esters, copolymers
and blends of these classes of resins, and others have been used with particular success.
Natural polymeric materials such as gelatin and gum arabic may also be used. Where
the proportions and activities of dyes and nitrate ion require a particular developing
time and temperature, the resin should be able to withstand those conditions. Generally
it is preferred that the polymer not decompose or lose its structural integrity at
93°C (200°F) for 30 seconds, and more preferred that it not decompose or lose its
structural integrity at 127°C for 30 seconds and most preferred that it withstand
144°C (290°F) for 60 seconds.
[0007] Beyond these minimal requirements, there is no criticality in the selection of a
binder. In fact, even transparency and translucency are not required, although they
are desirable. Where, for example, the polymer with the bleachable dye is itself an
opaque white, the thermally treated area will become white and the non-treated areas
will remain the color of the dye.
[0008] The binder serves a number of additionally important purposes in the constructions
of the present invention. The imageable materials are protected from ambient conditions
such as moisture. The consistency of the coating and its image quality are improved.
The durability of the final image is also significantly improved.
The Nitrate Salt
[0009] Nitrate salts are themselves well known. They may be supplied as various compounds
forms, but are preferably provided as a metal salt, and most preferably provided as
a hydrated metal salt. Other ions which are ordinarily good oxidizing ions such as
nitrite, chlorate, iodate, perchlorate, periodate, and persulfate do not provide comparable
results. Extremely active oxidizing agents, such as iodate, even used in relatively
smaller proportions to prevent complete and immediate oxidation or decolorization
of dyes do not perform nearly as well as nitrate ion compositions. The performance
of nitrate is so far superior to any other ion that it is apparently unique in the
practice of the present invention. While some of the better oxidizing ions other than
nitrate can only produce modest differences between the maximum optical density (D
max) and the minimum optical density (D
min) or produce high D
min values even in their best constructions, the better constructions with nitrate ions
can have a Dmax in excess of 1.0 and a D
min below 0.10.
[0010] Most means of supplying the nitrate ion into the composition are satisfactory. E.g.,
metal salts, acid salts, mixtures of acids and salts, and other means of supplying
the ion are useful. For example, nitrates of zinc, cadmium, potassium, calcium, zircon,
nickel, aluminum, chromium, iron, copper, magnesium, lead, and cobalt, ammonium nitrate,
and cerous ammonium nitrate have been used.
[0011] The nitrate salt component of the present invention must be present in a form within
the imaging layer so that HN0
3, NO, N0
2, or N
20
4 will be provided within the layer when it is heated to a temperature no greater than
200°C for 60 seconds and preferably no greater than 160°C for 60 or most preferably
30 seconds. This may be accomplished with many different types of salts, both organic
and inorganic, and in variously different types of constructions.
[0012] The most convenient way of providing such thermal oxidant providing nitrate salts
is to provide a hydrated nitrate salt such as aluminum nitrate nonahydrate (AI(NO
3)
2'9H
20). This salt, when heated in a binder, will generate HN0
3, NO, NO
Z and/or N
20
4 in various amounts. The binder should not be at such a high pH that the liberated
nitric acid would be imediately neutralized as this would adversely affect the oxidizing
capability of the system. PH levels above 8.5 may in many cases completely prevent
oxidation. It is therefore desired that the nitrate salt containing layer have an
acidic environment such as a pH less than 7.5, preferably equal to or less than 7.0,
and more preferably equal to or less than 6.5.
[0013] In addition to hydrated nitrate salts, non-hydrated salts in an acidic environment
are also capable of providing HN0
3, NO, N0
2, and/or N
20
4 in sufficient quantities to provide the oxidizing capability necessary for practice
of the present invention. Ammonium nitrate, for example, does not enable good oxidation
in a layer having a pH of 8.0 or higher, but when a moderate strength organic acid
such as phthalic acid is added to lower the pH to below 7.0, a quite acceptable imaging
system is provided.
[0014] Beside the inorganic types of salts generally described above, organic salts in non-alkaline
environments are also quite useful in the practice of the present invention. In particular,
nitrated quaternary ammonium salts such as quanadinium nitrate work quite well in
acid environments, but will not provide any useful image at alkaline pH levels or
8.0 or higher.
[0015] It is believed that an alkaline environment causes any oxidizing agent (e.g., HN0
3, NO, N0
2 and/or N
20
4) which is liberated from the nitrate salt to be preferentially reacted with hydroxy
ions or other neutralizing moieties so as to prevent oxidation of the dyes. For this
reason it is preferred to have the environment of the nitrate salt acidic, effectively
at a pH no greater than 7.0 and more preferably less than 6.5.
[0016] One other consideration should be given in the selection of the nitrate salt and
that is the choice of a salt in which the cation is non-reactive with the dye. Non-reactive
salts are defined in the practice of the present invention as those salts the cations
of which do not spontaneously oxidize the dyes that they are associated with at room
temperature. This may be readily determined in a number of fashions. For example,
the dye and a non-nitrate (preferably halide) salt of the cation may be codissolved
in a solution. If the salt oxidizes the dye spontaneously (within two minutes) at
room temperature, it is a reactive salt. Such salts as silver nitrate, in which the
cation is itself a strong oxidizing agent, is a reactive salt. Cerric nitrate is also
reactive, while hydrated cerrous nitrate is not.
[0017] Preferred salts are the hydrated metal salts such as nickel nitrate hexahydrate,
magnesium nitrate hexahydrate, aluminum nitrate nonahydrate, ferric nitrate nonahydrate,
cupric nitrate trihydrate, zinc nitrate hexahydrate, cadmium nitrate tetrahydrate,
bismuth nitrate pentahydrate, thorium nitrate tetrahydrate, cobalt nitrate hexahydrate,
gadolinium or lanthanum nitrate nonahydrate, mixtures of these hydrated nitrates and
the like. Non-hydrated or organic nitrates may be admixed therewith.
[0018] Organic nitrates are also quite useful in the practice of the present invention.
These nitrates are usually in the form of quaternary nitrogen containing compounds
such as guanadinium nitrate, pyridinium nitrate, and the like. Nitrated dyes will
also be useful, but again, they must be used in an environment which will not neutralize
any liberated HN0
3, NO, N0
2, and/or N
ZO
4.
[0019] It is necessary to have at least 0.10 moles of nitrate ion per mole of dye. It is
more preferred to have at least 0.30, more preferably at least 0.50 moles of ion per
mole of dye. Even amounts of from 1.0 to 100 moles of nitrate ion per mole of dye
have been found useful. With dyes having relatively higher oxidation potentials, more
nitrate is desirable.
Dyes
[0020] It is believed that essentially all leuco dyes (as defined herein) and bleachable
dyes are useful in the present invention. With some constructions it may be desirable
to select dyes which have an oxidation potential of less than or equal to +1.0. The
dyes may be selected from any class of dyes. These classes include but are not limited
to 1) methines, 2) indamines, 3) anthraquinones, 4) triarylmethanes, 5) benzylidenes,
6) monoazos, 7) oxazines, 8) azines, 9) thiazines, 10) xanthenes, 11) indigoids, 12)
oxonols, 13) cyanines, 14) merocyanines, 15) phenols, 16) naphthols, 17) pyrazolones,
and others, of which most are classified by the Colour Index System.
[0021] The measurement of oxidation potentials is well known to the ordinary skilled artisan.
The measurements in the present invention are taken by measuring the voltage and current
transferred between a carbon and a platinum electrode through the appropriate solution.
0.1 M lithium chloride in anhydrous methanol with 1 to 10 millimoles/liter of the
appropriate dye was the standard solution used in the measurements given herein with
a saturated calomel electrode.
[0022] Leuco dyes are colorless dyes which when subjected to an oxidation reaction form
a colored dye. These leuco dyes are well known in the art (e.g., The Theory of the
Photographic Process, 3rd Ed., Mees and James, pp. 283-4, 390-1, Macmillion Co. N.Y.;
and Light-Sensitive Systems, Kosar, pp. 367, 370-380, 406 (1965) Wiley and Sons, Inc.,
N.Y.) and U.S. Patent 3,974,147. Amongst the known leuco dyes are leuco malachite
blue, leuco malachite green, leuco crystal violet, and 1(2-(1,3,3-trimethylindolyl))-2-(p-morpholinylphenyl)ethene.
Only those dyes which can be converted to colored dyes by oxidation are useful as
leuco dyes in the practice of the present invention. Acid or base sensitive dyes such
as phenolphthalein are not useful in the present invention unless they are also oxidizable
to a colored state. Indicator dyes would only form transient images or would be too
sensitive to changes in the environment.
[0023] The leuco dye should be present as at least 0.3% by weight of the binder, preferably
as at least 1 % by weight of the binder, and most preferably as from 2 to 10% or more
by weight of the binder.
[0024] The proportions of nitrate salt and leuco dye should preferably be such that on heating
the layer at 127°C for 30 seconds there is at least an optical density of 0.2 obtained,
although with a mechanical viewing of the image or heating to a higher temperature,
a lower optical density is useful. Depending upon the relative ease of colorizing
the particular dye selected, the relative proportion of nitrate ion to dye may vary.
At least 0.1 moles of nitrate ion per mole of dye is required in the practice of the
present invention. At least 0.3 or 0.5 moles of nitrate per mole of dye is more preferred,
and at least 0.7 or 0.9 moles of nitrate per mole of dye is most preferred.
[0025] It is preferred to have sufficient bleachable dye in the binder prior to imaging
so that at least 15% of incident radiation (including ultraviolet and infrared) in
a 50 nm range would be absorbed through a 0.5 mm layer of binder and dye. Preferably
at least 75% of the incident radiation in a 20 nm range would be absorbed. These ranges
must of course be chosen within the spectral absorption region of the particular dye,
but such absorption in any portion of the spectrum is useful. In terms of weight percentages,
it would be preferred to have at least 0.30% by weight of dye as compared to the binder.
Preferably, at least 0.50% by weight of dye to binder is desired and most preferably
there should be at least 1% by weight of dye to binder in the layer up to 10% or more.
[0027] The following two dyes cannot be conveniently classed by the Colour Index System:

[0028] These examples are not intended to represent the limits of the present invention.
Any dye, and particularly those having an oxidation potential of +1.0 or less, may
work in the present invention. The substituent groups and dye structure are unimportant.
[0029] The bleachable dyes of the present invention are preferably colored, that is, having
absorbance in the visible portion of the electromagnetic spectrum (approximately 400
to 700 nm), but may also be colorless, having absorbance only or predominately in
the infrared (700 to 1100 nm) or ultraviolet (310 to 400 nm) portions of the electromagnetic
spectrum. The images where colorless dyes are used must then be viewed through a filter,
by an ultraviolet sensitive apparatus, or by some enhancement technique.
[0030] There should be sufficient bleachable dye present in the layers of this invention
so that transmissive optical density of at least 0.1 in the visible portions of the
spectrum is obtained or at least 5% of incident colorless light (including ultraviolet
or infrared) is absorbed. It is preferred that an optical density of at least 0.5
or 0.8 be obtained and most preferably that there be sufficient dye so that an optical
density of at least 1.0 be obtained in the layer. With colorless dyes (e.g., ultraviolet
and infrared absorbing dyes), it is preferred that at least 20% or 40% of incident
radiation be absorbed and most preferably that at least 60% or 90% of the incident
colorless light within a 20 nm range be absorbed.
[0031] The proportions of nitrate ion and dye should be such that on heating the layer at
127°C (260°F) for 30 seconds there is at least a 20% reduction in optical density,
although with a mechanical viewing of the image, a lower reduction in optical density
is useful. Depending upon the relative ease of decolorizing the particular dye selected,
the relative proportion of nitrate ion to dye may vary. At least 0.1 moles of nitrate
ion per mole of dye is required in the practice of the present invention. At least
0.3 or 0.5 moles of nitrate per mole of dye is more preferred, and at least 0.7 or
0.9 moles of nitrate per mole of dye is most preferred. Where the decolorizable layers
of the present invention are used as antihalation layers, particularly with thermally
developable imaging materials, more than a 20% reduction in optical density is usually
desirable. At least 50% or 60% is preferred and at least 90% or 95% reduction in optical
density is most preferred. These reductions can be measured at the development temperatures
for the imaging materials, e.g., 127°C for 30 seconds or 155°C for 45 seconds.
The Acids
[0032] The acids utilized in the present invention are acids as generally known to the skilled
chemist. Organic acids are preferred, but inorganic acids (generally in relatively
smaller concentrations) are also useful. Organic acids having carboxylic groups are
more preferred. The acid may be present in a ratio up to 10 times the amount of the
nitrate ion. More preferably it is present in amounts from 0.2 to 2.0 times the amount
of nitrate ion.
[0033] In forming the dye layers or coating of the dye layers onto a substrate, temperatures
should, of course, not be used during manufacture which would completely oxidize the
layer. Some colorization or decolorization is tolerable, with the initial dye concentrations
chosen so as to allow for anticipated color changes. It is preferred, however, that
little or no dye be formed or decolorized during forming or coating so that more standardized
layers can be formed. Depending on the anticipated development temperature, the coating
or forming temperature can be varied. Therefore, if the anticipated development temperature
were, for example, 167°C (350°F) the drying temperature could be 138°C and it would
not be desirable for the layer to lose 20% of its optical density at the drying temperature
in less than 4-5 minutes, although it would be tolerable by correspondingly increasing
the amount of dye. Thus the preferred limitation of at least 20% reduction in optical
density or absorbance of colorless light at 127°C for 30 seconds is based on the assumption
of a development temperature of 127°C. For an anticipated higher or lower development
temperature, the 20% reduction in optical density or absorbance should occur at that
development temperature within a reasonable period of time. A reasonable development
temperature range is between 82°C and 193°C and a reasonable dwell time is between
5 seconds and 5 minutes, preferably at between (105°C and 167°C and for 10 to 180
seconds, with the longer times most likely associated with the lower development temperatures.
Therefore, all of the absorbance characteristics are applicable to the generally useful
development range of 82°C to 193°C. Photothermographic imaging materials are well
known in the art in various and sundry forms. Silver reduction systems (e.g., as disclosed
in U.S. Patent. No. 3,457,075 and 3,849,049), thermal diazonium salt systems (e.g.,
as described in U.S. Patent No. 3,754,916), and others are examples of these systems.
Typical constructions of these photothermographic systems will comprise one or two
layers which constitute a photothermographic imaging system coated over a base. If
the support base is transparent, the heat-bleachable layer of the present invention
may be coated either between the imaging layers and the base or on the backside of
the base. If coated between the base and the imaging layer, it is desirable to minimize
competing reactions. This can be done, for example, by selecting polymers and solvent
systems for the various layers which will not promote migration between the layers.
When the base is opaque, the heat-bleachable layer must be between the imaging layers
and the base. This would, of course also be true if there were more than one imaging
layer.
[0034] All of this will be more thoroughly understood by consideration of the following
examples:
Examples 1-13
[0035] A three component system of the present invention was evaluated by using nickel nitrate
hexahydrate, phthalic acid and a merocyanine dye of the formula

The dye was provided as a solution of 0.8 g dye/100 ml of a solvent comprising 50/50
volume proportions of methanol and N-methylpyrrolidone. Three different concentrations
of each ingredient were used. These ingredients were added to 2.5 g methanol and 12.5
g of a 10% by weight solids solution of polyvinylbutyral (as a binder) and methanol.
The solutions were coated at 0.076 mm thickness on a polyester backing then dried
for 3 minutes at 70°C. Maximum optical density (D
max) readings were taken. The coated sheets were then heated at 127°C for 30 seconds
and the final maximum optical density (D
f) measured. The difference between D
max and D
f is the change in optical density (A D). The concentrations of materials and results
appear in Table I.

Examples 14-16
[0036] These examples evaluate the benefits of an acidic environment of the bleaching or
decolorizing of the present invention. For this example, a dye of the structure

was used in a solution having 0.8 g dyes/100 ml of solvent comprising a 50/50 volume
solution of methanol and N-methyl-pyrrolidone. The coating solutions were as follows:
[0037] The acid was phthalic acid, the nitrate was nickel nitrate hexahydrate. The coating
solution was prepared, coated, and dried as in Example 1, then heated for thirty seconds
at 127°C (260° F). Example 14 bleached from medium blue to pale yellow, 15 became
a lighter purple, and 16 became a light yellow. This shows that in the absence of
an acid environment, greater concentrations of nitrate are desirable for more complete
bleaching.
Examples 17-24
[0038] These examples show the wide variety of acids which can be used in the construction
and indicates that the acid functionality is not dependent upon the structure of the
acid. All constructions were identical to those of Examples 14-16 except that 5.5
ml of dye and 0.05 g of nickel nitrate hexahydrate were used. The sheets were heated
at 127°C for 30 seconds in an inert fluorocarbon bath. All sheets were initially a
medium blue.

Example 25
[0039] This example demonstrates the use of the heat-decolorizable layer as an antihalation
backing for a photothermographic film.
[0040] A solution was prepared by dissolving 8 g of magnesium nitrate hexahydrate and 12
g of phthalic acid in 75 g of methanol. This was broken down into aliquots of 3 g
of solution, to which were added 4 ml of dye solution containing 0.15 g of malachite
green and 0.05 g of crystal violet in 10 ml of a 50/50 volume solution of methanol
and N-methylpyrrolidone.
[0041] Crystal violet has an oxidation potential greater than +1.0 and has the structure:

Acid malachite green, also used in the practice of the present invention, has the
same structure except that one of the dimethylamine groups has been replaced by a
hydrogen atom.
[0042] To the dye and nitrate containing solution was added 12.5 g of a solution of 15%
by weight cellulose acetate, 10% methylisobutylketone, 10% methanol, and 65% acetone.
The final solution was coated onto the backside of a commercially available photothermographic
film (3M Dry Silver Film Type 8220) which comprises a transparent backing having an
imageable layer thereon comprised of silver halide in catalytic proximity to silver
behenate in a binder with a mild silver reducing agent. These materials are well described
in U.S. Patent No. 3,475,075. The coating thickness was 0.076 mm (3 mils) and was
dried for 3 minutes at 70°C. A photothermographic film with the antihalation backing
was exposed at the same time as the sample without the backing to artificial daylight
through a continuous step wedge. Both examples were then developed at 127°C for 30
seconds. The antihalation backing bleached to a pale yellow. The effect of the antihalation
layer was obvious to the untrained eye. Image flare was significantly reduced.
Example 26
[0043] The antihalation backing of the previous example was coated on transparent polyester
film and dried at 70°C. The colored film was thermographically exposed imagewise in
a thermographic copier ("Secretary" Copier by 3M). The film bleached in an area corresponding
to the image on the original. This demonstrates the use of the films as an image producing
element which, for example, could be used as a transparency for overhead projector.
[0044] There are a number of features of the present invention which should be noted. The
imaging materials have excellent shelf life. They may set for months at ambient conditions
and in room light without any deterioration in properties, to the degree that the
dyes themselves are lighfstable. They are inexpensive to make and have a broad range
of utility. No light sensitive materials need be present in the system and no external
chemistry need be applied in order to develop an image. The absence of photosensitive
and even thermally sensitive materials (except for whatever gives the present invention
its thermally developable properties) is particularly noteworthy. No silver halides
or diazonium salts are needed for light sensitivity and there is no need for the external
application of toners. The present system is remarkable in its simplicity. The present
system is preferably light insensitive in that exposure to light does not sensitize
or desensitize the construction to any form of thermal or chemical development. That
is, if the imageable layer of the present invention is exposed to light in an imagewise
fashion then generally heated or generally exposed to a reducing agent, there will
be no image formed corresponding to the light exposure. This is true even when the
layer is laminated to a light sensitive substrate.
Examples 27-39
[0045] Examples 1-13 were repeated for each of the following nitrate salts: Aluminum nitrate,
nonahydrate, cobalt nitrate hexahydrate, zirconyl nitrate, ceric ammonium nitrate,
barium nitrate, cupric nitrate trihydrate, silver nitrate, chromium nitrate nonahydrate,
thorium nitrate tetrahydrate, bismuth nitrate pentahydrate, ferric nitrate nonahydrate,
sodium nitrate and potassium nitrate. These systems also showed decolorizing effects.
The multivalent salts tended to be significantly better than the monovalent salts,
except that silver nitrate performed as well as many of the multivalent salts because
of the oxidizing ability of the silver ion.
[0046] The imaging layers of the present invention may contain various materials in combination
with the essential ingredients of the present invention. For example, lubricants,
coating aids, antioxidants (e.g., ascorbic acid, hindered phenols, phenidone, etc.
in amounts that would not prevent oxidation of the dyes when heated), surfactants,
antistatic agents, mild oxidizing agents in addition to the nitrate, and brighteners
may be used without adversely affecting practice of the invention.
[0047] The imaging layers of the present invention must allow reactive association of the
active ingredients in order to enable imaging. That is, the individual ingredients
may not be separated by impenetrable barriers within the layer, as with dispersed
immiscible phases. Generally, the active ingredients are homogeneously mixed (e.g.,
a molecular mixture of ingredients) within the layer. They may be individually maintained
in heat softenable binders which are dispersed or mixed within the layer and which
soften upon heating to allow migration of ingredients, but this would require a longer
development time.
[0048] As can be seen from the constructions of the examples, light sensitive or radiation
sensitive components such as silver halide, photolabile halogen compounds, diazonium
salts, or photooxidant compounds are not essential for the practice of the present
invention. In fact, the preferred construction of the present invention is not light
sensitive. That is, if the element were exposed to light in an imagewise manner prior
to thermal development of the entire sheet, there would be no dramatic differential
image formed. As almost all dyes fade or bleach with prolonged exposure to light,
light insensitivity for the element must be defined as stated above, with the exposure
being less than that capable of photobleaching the dye itself.
Example 40
[0049] A coating composition comprising 2.0 grams phthalic acid, 0.3 grams crystal violet,
12.3 grams acetone, 15.4 grams N-methylpyrrolidone, 150 grams of 30% by weight solutions
of polyvinylidine chloride in tetrahydrofuran (5%) and methylethylketone (65%) and
0.17 grams of guanidine and nitric acid in equal molar proportions was coated at 75,am
wet thickness on polyester base and dried for three minutes at 75°C. Imagewise heating
for forty seconds at 290°F (143°C) provided an image with a Dmln of 0.17 and a D
max of 0.86.
Example 41
[0050] Each and every one of the dye structures listed above with Roman numerals was found
to thermally image by bleaching in one of the following systems.
[0051] The first system tried was 3 ml of a dye solution formed by dissolving 0.1 g dye
in 10 ml of a N-methylpyrrolidone/methanol (50/50 volume). To this was added 0.05
g of Ni(NO
3)
2·6H
2O and 0.05 g of phthalic acid in 2.5 g methanol. This was then combined with 12.5
g of a resin solution comprising 10% by weight cellulose acetate, 10% methylisobutyl
ketone, and 80% acetone. If the dye did not bleach well when heated in this air dried
composition, the proportions were varied by increasing the amount of Ni(N0
3)
2.6H
20 and phthalic acid to 0.20 g each, increasing the cellulose acetate to 20% and the
methylisobutyl ketone to 20% in the resin solution, while reducing the acetone to
60% in the resin solution. All of the dyes were shown to thermally bleach in an imagewise
fashion in this manner.
Example 42
[0052] A coating solution was prepared by dissolving 8 g of magnesium nitrate hexahydrate
and 12 g of phthalic acid in 75 g of methanol. To a 3 g aliquot of this solution was
added 4 ml of a dye solution containing 0.20 g of leuco malachite green in 10 ml of
a 50/50 volume solution of methanol and n-methylpyrrolidone. To this leuco dye and
nitrate solution was added 12.5 g of a solution of 15% by weight cellulose acetate,
10% methylisobutylketone, 10% methanol, and 65% acetone. This was coated onto clear
polyethyleneterephthalate and dried below 90°C for ten minutes. Upon imagewise heating
to 127°C for thirty seconds, an image was produced with a D
max of about 1.0 and a low D
min'
Examples 43-46
[0053] Example 42 was repeated except that the magnesium salt was replaced with equimolar
(based on nitrate ion) proportions of aluminum nitrate nonahydrate, nickel nitrate
hexahydrate, chromium nitrate nonaydrate, and potassium nitrate (the last with 0.5
g of glycerol added to the first solution). After development as in Example 42, the
nickel, aluminum, and chromium salts showed similar results with D
max values in excess of 0.9. The potassium salt produced a much weaker, but visible image.
Examples 47-49
[0054] Example 42 was repeated except that the leuco malachite green was replaced by equal
molar amounts of leuco crystal violet, 1(2-(1,3,3-trimethylindolyl))-2-(p-morpholinylphenyl)ethene,
and the leuco dye

Upon development as in Example 42, violet, red and pale blue images were respectively
formed in each of the colorizable systems.
[0055] The imaging layers of the present invention may contain various materials in combination
with the essential ingredients of the present invention. For example, lubricants,
coating aids, antioxidants (e.g., ascorbic acid, hindered phenols, phenidone, etc.
in amounts that would not prevent oxidation of the dyes when heated), surfactants,
antistatic agents, mild oxidizing agents in addition to the nitrate, and brighteners
may be used without adversely affecting practice of the invention.
[0056] The imaging layers of the present invention must allow reactive association of the
active ingredients in order to enable imaging. That is, the individual ingredients
may not be separated by impenetrable barriers within the layer, as with dispersed
immiscible phases. Generally, the active ingredients are homogeneously mixed (e.g.,
a molecular mixture of ingredients) within the layer. They may be individually maintained
in heat softenable binders which are dispersed or mixed within the layer and which
soften upon heating to allow migration of ingredients, but this would require a longer
development time.
1. An imageable layer comprising a polymeric binder, and within said binder a leuco
dye or bleachable dye, and a nitrate salt, the nitrate ion of which being present
in a ratio of at least 0.1 moles/mole of dye, said nitrate salt in said binder being
capable of liberating a sufficient quantity of oxidizing agent selected from HN03, NO, N02 and N204 when heated up to 200°C for 60 seconds to oxidize said bleachable dye to a different
colour or colourless state or oxidize said leuco dye to a coloured state, characterised
in that an acid is present within the binder.
2. An imageable layer as claimed in Claim 1, in which the ratio of the moles of nitrate
ion to moles of dye is at least 0.5.
3. An imageable layer as claimed in Claim 1 or Claim 2, in which said acid is present
within said binder in a ratio up to 10 times the amount of nitrate ion.
4. An imageable layer as claimed in any preceding claim, in which the pH of said imageable
layer is less than 7.0.
5. An imageable layer as claimed in any preceding claim, in which said nitrate salt
in said binder is capable of liberating said sufficient quantity of oxidizing agent
when heated to up to 160°C for 60 seconds.
6. An imageable layer as claimed in any preceding claim, in which said nitrate salt
comprises a metal nitrate salt.
7. An imageable layer as claimed in Claim 6, in which said nitrate salt comprises
a hydrated metal nitrate salt.
8. An imageable layer as claimed in Claim 7, in which said nitrate salt is a hydrated
salt of one of the group consisting of zinc, cadmium, nickel, aluminium, iron, copper,
magnesium, chromium, cobalt, bismuth, lanthanum, galolinium, thorium, zirconium, and
calcium.
9. An imageable layer as claimed in any preceding claim, which is light insensitive.
10. An imageable layer as claimed in any one of Claims 1 to 9, in which said dye is
present in an amount of at least 0.3% by weight of the binder.
11. An imageable layer as claimed in any one of Claims 1 to 9, in which said dye is
a bleachable dye present in a concentration of dye sufficient to provide a transmissive
optical density of at least 0.1 in the visible region of the electromagnetic spectrum.
12. An imageable layer as claimed in any preceding claim, in which said dye is a bleachable
dye, selected from methines, indamines, anthraquinones, triarylmethanes, benzylidenes,
monoazos, oxazines, azines, thiazines, xanthenes, indigoids, oxonols, cyanines, merocyanines,
phenols, naphthols and pyrazolones.
13. An imageable layer as claimed in any one of Claims 1 to 10, in which said dye
is a leuco dye selected from leuco crystal violet, leuco malachite blue, leuco malachite
green, and 1(2-(1,3,3-trimethylindolyl))-2-(p-morpholinylphenyl)-ethene.
1. Couche photographique comprenant un liant polymère qui contient un leucocolorant
ou une matière colorante décolorable et un nitrate, l'ion nitrate étant présent dans
la proportion d'au moins 0,1 mole/mole de colorant, ledit nitrate dans ledit colorant
étant capable de libérer une quantité suffisante d'agent oxydant appartenant au groupe
de HN03, NO, N02 et N204 quand on le chauffe jusqu'à 200°C pendant 60 secondes pour oxyder ladite matière
colorante décolorable en une couleur différente ou un état incolore, ou pour oxyder
ledit leucocolorant en un état oxydé, ladite couche photographique étant caractérisée
en ce qu'un acide est présent dans le liant.
2. Couche photographique selon la revendication 1, caractérisée en ce que le rapport
des moles d'ion nitrate aux moles de colorant est d'au moins 0,5.
3. Couche photographique selon l'une des revendications 1 et 2, caractérisée en ce
que l'acide est présent dans le liant dans un rapport égal à jusqu'à 10 fois la quantité
d'ion nitrate.
4. Couche photographique selon l'une des revendications 1 à 3, caractérisée en ce
que le pH de la couche photographique est inférieur à 7,0. `
5. Couche photographique selon l'une des revendications 1 à 4, caractérisée en ce
que le nitrate dans le liant est capable de libérer une quantité suffisante d'agent
oxydant lorsqu'on le chauffe jusqu'à 160°C pendant 60 secondes.
6. Couche photographique selon l'une des revendications 1 à 5, caractérisée en ce
que le nitrate comprend un nitrate métallique.
7. Couche photographique selon la revendication 6, caractérisée en ce que le nitrate
comprend un nitrate métallique hydraté.
8. Couche photographique selon la revendication 7, caractérisée en ce que le nitrate
est un sel hydraté d'un métal appartenant au groupe du zinc, cadmium, nickel, aluminium,
fer, cuivre, magnésium, chrome, cobalt, bismuth, lanthané, gadolinium, thorium, zirconium
et calcium.
9. Couche photographique selon l'une des revendications 1 à 8, caractérisé en ce qu'elle
est insensible à la lumière.
10. Couche photographique selon l'une des revendications 1 à 9, caractérisée en ce
que le colorant est présent en une quantité d'au moins 0,3% en poids par rapport au
liant.
11. Couche photographique selon l'une des revendications 1 à 9, caractérisée en ce
que le colorant est une matière colorante décolorable qui est présente à une concentration
suffisante pour fournir une densité optique de transmission d'au moins 0,1 dans la
région visible du spectre électromagnétique.
12. Couche photographique selon l'une des revendications 1 à 10, caractérisée en ce
que le colorant est une matière colorante décolorable appartenant au groupe des méthines,
indamines, anthraquinones, triarylméthanes, benzylidènes, monoazos, oxazines, azines,
thiazines, xanthènes, indigoïdes, oxonols, cyanines, mérocyanines, phénols, naphthols
et pyrazolones.
13. Couche photographique selon l'une des revendications 1 à 10, caractérisée en ce
que le colorant est un leucocolorant appartenant au groupe des leucoviolet cristallisé,
leucobleu malachite, leucovert malachite et 1(2-(1,3,3-triméthylindolyl))-2-(p-morpholinylphényl)-éthène.
1. Eine Abbildungsschicht, umfassend ein polymeres Bindemittel und innerhalb dieses
Bindemittels einen Leukofarbstoff oder bleichbaren Farbstoff und ein Nitratsalz, dessen
Nitrat-Ion in einem Verhältnis von mindestens, 0,1 Mol/Mol Farbstoff vorhanden ist,
wobei das Nitratsalz in dem Bindemittel in der Lage ist, beim Erhitzen auf 200°C für
60 Sekunden eine ausreichende Menge HN03, NO, N02 oder N204 als Oxidationsmittel freizusetzen, um den bleichbaren Farbstoff zu einer unterschiedlichen
Farbe oder zum farblosen Zustand zu oxidieren oder den Leukofarbstoff zu einem gefärbten
Zustand zu oxidieren, dadurch gekennzeichnet, daß eine Säure in dem Bindemittel vorhanden
ist.
2. Abbildungsschicht gemäß Anspruch 1, in der das Molverhältnis Nitrat-Ion zu Farbstoff
mindestens 0,5 beträgt.
3. Abbildungsschicht nach Anspruch 1 oder Anspruch 2, in der die Säure in dem Bindemittel
in einem Verhältnis bis zur 10-fachen Menge des Nitrat-Ions vorhanden ist.
4. Abbildungsschicht nach einem der vorangehenden Ansprüche, in der der pH-Wert der
Abbildungsschicht geringer als 7,0 ist.
5. Abbildungsschicht nach einem der vorangehenden Ansprüche, in der das Nitratsalz
im Bindemittel in der Lage ist, die ausreichende Menge Oxidationsmittel beim Erhitzen
auf 160°C für 60 Sekunden freizusetzen.
6. Abbildungsschicht nach einem der vorangehenden Ansprüche, in der das Nitratsalz
ein Metall-Nitratsalz umfaßt.
7. Abbildungsschicht nach Anspruch 6, in der das Nitratsalz ein hydratisiertes Metall-Nitratsalz
umfaßt.
8. Abbildungsschicht nach Anspruch 7, in der das Nitratsalz ein hydratisiertes Salz
von Zink, Cadmium, Nickel, Aluminium, Eisen, Kupfer, Magnesium, Chrom, Kobalt, Wismut,
Lanthan, Gadolinium, Thorium, Zirkonium oder Calcium ist.
9. Eine Abbildungsschicht nach einem der vorangehenden Ansprüche, die lichtunempfindlich
ist.
10. Abbildungsschicht nach einem der Ansprüche 1- bis 9, in der der Farbstoff in einer
Menge von mindestens 0,3 Gewichtsprozent des Bindemittels vorhanden ist.
11. Abbildungsschicht nach einem der Ansprüche 1 bis 9, in der der Farbstoff ein bleichbarer
Farbstoff ist, der in einer Konzentration vorhanden ist, die ausreicht, um eine transmissive
optische Dichte von mindestens 0,1 im sichtbaren Bereich des elektromagnetischen Spektrums
zu ergeben.
12. Abbildungsschicht nach einem vorangehenden Anspruch, in der der Farbstoff ein
bleichbarer Methin-, Indamin-, Anthrachinon-Triarylmethan-, Benzyliden, Monoazo-,
Oxazin-, Azin-, Thiazin-, Xanthen-, Indigoid-, Oxonol-, Cyanin-, Merocyanin-, Phenol-,
Naphthol- oder Pyrazolinfarbstoff ist.
13. Abbildungsschicht nach einem der Ansprüche 1 bis 10, in der der Farbstoff ein
Leukokristallviolett-, Leukomalachitblau-, Leukomalachitgrün- oder 1-(2-(1,3,3-Trimethyiindoiyi))-2-(p-morphoiinyi-
phenyl)-äthen-Leukofarbstoff ist.