FIELD OF THE INVENTION
[0001] This invention refers to light-sensitive silver halide color photographic elements
having at least one layer comprising a silver halide photographic emulsion, at least
one 2,5-diacylamino phenol cyan coupler and at least one sulfo-substituted spectral
sensitizing dye, wherein such spectral sensitizing dye is added to the silver halide
photographic emulsion after the desalting step process in the preparation of such
emulsion.
BACKGROUND OF THE INVENTION
[0002] The spectral sensitizing technique of adding certain sensitizing dyes to a silver
halide photographic emulsion to expand its light-sensitive wavelength region to the
longer wavelength side is well known in the art for preparing silver halide color
photographic emulsions.
[0003] The degree of spectral sensitization is influenced by the chemical structure of the
sensitizing dye, by many properties of the emulsion (for example, composition of silver
halides, crystal habit, crystal form, silver ion concentration) and the like. It is
also influenced by the photographic additives present in the emulsiop, such as stabilizer
agents, antifoggants, colour couplers, etc.
[0004] Combination of the sensitizing dye and the coupler to form a salt, causing the sensitizer
molecules to be desorbed from the grain surface, has been long recognised in the art
(H.Meier,
Spectral Sensitization, The Focal Press, 1968, p.52).
[0005] 2,5-Diacylamino phenol cyan couplers are known to produce cyan dyes having excellent
resistance against fading as described, for example, in US Patent Nos. 4,333,999;
4,451,559; 4,465,766 and 4,554,244.
[0006] The combination of said 2,5-diacylamino phenol cyan couplers with conventional cationic
cyanine dyes shows no sensitometric problem if the coupler is added to a red sensitized
emulsion immediately before coating, whereas it causes a dramatic loss of red sensitivity
(desensitization) if the finalled emulsion is held several hours at high temperature
before coating.
[0007] DE-A-3 641 861 describes multilayer colour photographic elements comprising a 2,5-diacylaminophenol
cyan coupler and a silver halide emulsion red-sensitized with a sulfo-substituted
thiacarbocyanine dye.
[0008] With cyanine dyes having two sulfoalkyl groups, desensitization is reduced, but such
cyanine dyes cause an increased sensitization of the adjacent layers of the coated
film (diffusion sensitization) since they can diffuse into the adjacent layers under
high temperature and humidity. This diffusion is a serious problem in practical use.
[0009] US Patent No.4,513,081 describes a silver halide photographic emulsion comprising
a 2,5-diacylamino phenol cyan coupler and a merocyanine sensitizing dye which does
not undergo desensitization and diffusion sensitization.
[0010] European Patent Application No. 291,339 describes a high sensitivity light-sensitive
photographic element having one layer comprising a silver halide photographic emulsion,
wherein said silver halide emulsion is obtained by addition of a spectral sensitizing
dye during the desalting step in obtaining such emulsion.
SUMMARY OF THE INVENTION
[0011] The present invention provides a light-sensitive silver halide color photographic
element having at least one layer comprising a silver halide photographic emulsion
containing sensitizing cyanine dyes and 2,5-diacylamino phenol cyan couplers to overcome
desensitization and diffusion sensitization defects.
[0012] The present invention provides light-sensitive silver halide color photographic elements
having at least one layer comprising a silver halide photographic emulsion containing
sulfo-substituted thiacarbocyanine sensitizing dyes and 2,5-diacylamino phenol cyan
couplers, wherein such sensitizing dyes are added to the silver halide photographic
emulsion after the desalting step in the preparation of said emulsion and before the
addition of dispersing medium to reconstitute the emulsion to provide substantially
no migration of the spectral sensitizing dye into adjacent layers.
BRIEF DESCRIPTION OF THE DRAWINGS
[0013] An embodiment of the invention selected by way of example will be herein below described
with reference to the accompaying diagrammatic drawings in which FIGS. 1 and 2 represent
the sensitization spectra of silver halide color photographic elements.
DETAILED DESCRIPTION OF THE INVENTION
[0014] The 2,5-diacylamino non-leuco phenol cyan couplers for use in the present invention
are represented by the formula (I):

wherein R₁ is an aryl group (preferably up to 30 carbon atoms), R₂ is an alkyl group
of up to 20 carbon atoms such as methyl, ethyl, butyl, dodecyl, etc.) or an aryl group
of up to 20 carbon atoms, R₃ is a hydrogen atom, a halogen atom (such as fluorine,
bromine, chlorine, etc.), an alkyl group of up to 20 carbon atoms (such as methyl,
ethyl, butyl, dodecyl, etc.) or an alkoxy group of up to 20 carbon atoms (such as
methoxy, ethoxy, etc.), and Z₁ is a hydrogen atom, a halogen atom or a group which
can be split off by the reaction of said coupler with the oxidized product of an aromatic
primary amine-type color developing agent (e.g., a leaving group useful on a phenol
color photographic coupler); y is 0 or 1.
[0015] The aryl group represented by R₁ of formula (I) is, e.g., a phenyl group, a naphthyl
group, or other aryl group of up to 30 carbon atoms, and preferably is a phenyl group.
This group is allowed to have a single substituent or a plurality of substituents;
for example, typical substituents introducible to the aryl group include halogen atoms
(such as fluorine, chlorine, bromine, etc.), alkyl groups (such as methyl, ethyl,
propyl, butyl, dodecyl, etc.), hydroxyl group, cyano group, nitro group, alkoxy groups
(such as methoxy, ethoxy, etc.), alkylsulfonamido groups (such as methylsulfonamido,
octylsulfonamido, etc.), arylsulfonamido groups (such as phenylsulfonamido, naphthylsulfonamido,
etc.), alkylsulfamoyl groups (such as butylsulfamoyl), arylsulfamoyl (such as phenylsulfamoyl),
alkyloxycarbonyl groups (such as methyloxycarbonyl), aryloxycarbonyl groups (such
as phenyloxycarbonyl), aminosulfonamido groups, acylamino groups, carbamoyl groups,
sulfonyl groups, sulfinyl groups, sulfoxy groups, sulfo groups, aryloxy groups, alkoxy
groups, alkylcarbonyl groups, arylcarbonyl groups, aminocarbonyl groups, and the like.
Two different members of these groups are allowed to be introduced to the aryl group.
The preferred group represented by R₁ is a phenyl group, the more preferred is a phenyl
group having one or more substituents including halogen atoms and cyano groups.
[0016] When the term "group" is used in the present invention to describe a chemical compound
or substituent, the described chemical material includes the basic group and that
group with conventional substitution. Where the term "moiety" is used to describe
a chemical compound or substituent, only an unsubstituted chemical material is intended
to be included. For example, "alkyl group" includes not only alkyl moieties as methyl,
ethyl, octyl, dodecyl, etc., but also such moieties bearing sustituent groups such
as halogen, cyano, hydroxyl, nitro, amine, carboxylate, etc. On the other hand, "alkyl
moiety" includes only methyl, ethyl, octyl, dodecyl, etc.
[0017] In the present invention, the preferred cyan couplers having Formula (I) are the
compounds having the following formula (II):

wherein Z₂ is a hydrogen atom, a halogen atom (such as fluorine, bromine, chlorine,
etc.) or a monovalent organic group, R₄ is a hydrogen atom or a substituent exemplified
by a halogen atom (such as fluorine, bromine, chlorine, etc.), a hydroxyl group, a
nitro group, an alkyl group of up to 20 carbon atoms (such as methyl, ethyl, iso-propyl,
tert.-butyl, n-octyl, n-dodecyl, etc.), an alkyloxycarbonyl group (such as methyloxycarbonyl),
an aryloxycarbonyl group (such as phenyloxycarbonyl), an alkoxy group of up to 20
carbon atoms (such as methoxy, ethoxy, etc.), an aryloxy group (such as phenoxy),
an alkylcarbonyl group (such as methylcarbonyl, propylcarbonyl, octylcarbonyl, etc.),
an arylcarbonyl (such as phenylcarbonyl), an acyloxy group (such as acetoxy, benzoyloxy,
etc.), an alkylsulfonyl group (such as methylsulfonyl, ootylsulfonyl, etc.), an arylsulfonyl
group (such as phenylsulfonyl), an acyl group (such as acetyl), an acylamino group,
a sulfonamido group (such as methylsulfonamido, octylsulfonamido, phenylsulfonamido,
etc.), a sulfamoyl group (such as butylsulfamoyl, phenylsulfamoyl, etc.), and the
like; X is an oxygen atom or a sulfur atom, R₅ is a straight-chain or a branched-chain
alkylene group, n is an integer of 0 to 3, m is an integer of 0 to 4 and 1 is an integer
of 1 to 4, and Z₃ is a hydrogen atom, a halogen atom or a group which can be split
off by the reaction of said coupler with the oxidised product of an aromatic primary
amine-type color developing agent.
[0018] Examples of monovalent organic group represented by Z₂ include a halogen atom, a
nitro group, an amino group, a cyano group, a hydroxy group, a carboxy group, an alkyl
group (such as methyl, ethyl, propyl, isopropyl, t-butyl, octyl, etc.), an aralkyl
group (such as benzyl, phenethyl, etc.), an alkoxy group (such as methoxy, ethoxy,
benzyloxy, etc.), an aryloxy group (such as phenoxy, p-nitrophenoxy, etc.), an acylamino
group (such as acetylamino, propionylamino, benzoylamino, phenoxyacetylamino, etc.),
a carbamoyl group (such as methylcarbamoyl, dimethylcarbamoyl, phenylcarbamoyl, diphenylcarbamoyl,
etc.), a sulfonamido group (such as methanesulfonamido, butanesulfonamido, benzenesulfonamido,
p-toluene- sulfonamido, etc.), a sulfamoyl group (such as methylsulfamoyl, dimethylsulfamoyl,
phenylsulfamoyl, etc.), an alkylcarbonyl group (such as methylcarbonyl, propylcarbonyl,
octylcarbonyl, etc.), an arylcarbonyl group (such as phenylcarbonyl), an alkyoxycarbonyl
group (such as methyloxycarbonyl, ethyloxycarbonyl, butyloxycarbonyl, t-butyloxycarbonyl,
etc.), an aryloxycarbonyl group (such as phenyloxycarbonyl), and the like.
[0019] In the present invention, the more preferred cyan couplers having formula (I) are
the compounds having the following formula (III):

wherein Z₄ is a hydrogen atom or a halogen atom (such as fluorine, chlorine, bromine,
etc.), Z₅ is a hydrogen atom or a chlorine atom, R₆ is a hydrogen atom or an alkyl
group of up to 20 carbon atoms (such as methyl, ethyl, propyl, butyl, octyl, dodecyl,
etc.), R₇ and R₈ may be either the same or different and each is a hydrogen atom,
an alkyl group of up to 20 carbon atoms (such as methyl, ethyl, butyl, dodecyl, etc.)
or an alkoxy group of up to 20 carbon atoms (such as methoxy, ethoxy, etc.), provided.
that the sum of carbon atoms of R₆, R₇ and R₈ is from 8 to 20, and x is an integer
of 0 to 2.
[0020] In formulas (I), and (II), the groups that can be split off by the reaction of these
couplers with the oxidized product of the aromatic primary amine-type color developing
agents, represented by Z₁ and Z₃, are all known to those skilled in the art. Any of
these groups changes the reactivity of the coupler or is split from the coupler to
fulfill its development-inhibiting, bleach-inhibiting and color-compensation inhibiting
functions to thereby advantageously act in the coupler-containing layers or other
layers of the silver halide color photographic material. Typcal examples os such groups
include, for example, alkoxy groups, aryloxy groups, arylazo groups, thiether, carbamoyloxy
groups, acyloxy groups, imido groups, sulfonamido groups, thiocyano group or heterocyclic
groups (such as oxazolyl, diazolyl, triazolyl, tetrazolyl, etc.), and the like. The
particularly preferred examples represented by Z₁ and Z₃ are a hydrogen atom or a
chlorine atom.
[0021] The cyan couplers of formula (I) can readily be synthesized by use of methods well
known in the art such as described, for example, in US Patents 3,758,308, 4,333,999
and 4,451,559.
[0023] The sulfo substituted thiacarbocyanine sensitizing dyes for use in the present invention
comprise two basic heterocyclic nuclei joined by a linkage of three methine groups,
at least one of said heterocyclic nucleus being a benzothiazolium nucleus. The heterocyclic
nuclei preferably include fused benzene rings.
[0024] Examples of heterocyclic nuclei include quinolinium, benzoxazolium, benzothiazolium,
benzoselenazolium, benzimidazolium, naphthoxazolium, naphthothiazolium and naphthoselenazolium
quaternary salts.
[0025] The preferred sulfo substituted sensitizing cyanine dyes are thiacarbocyanine sensitizing
dyes represented by the following formula (IV):

wherein Y₁, Y₂, Y₃ and Y₄ each represents a hydrogen atom, a halogen atom (e.g. chlorine,
bromine, iodine and fluorine), a hydroxy group, an alkoxy group (e.g. methoxy, ethoxy,
etc.), an amino group (e.g. amino, methylamino, dimethylamino, etc.), an acylamido
group (e.g. acetamido, propionamido, etc.), an acyloxy group (e.g. acetoxy group,
etc.), an alkoxycarbonyl group (e.g. methoxycarbonyl, ethoxycarbonyl, butoxycarbonyl,
etc.), an alkyl group (e.g. methyl, ethyl, isopropyl, etc.), an alkoxycarbonylamino
group (e.g. ethoxycarbonylamino, etc.), or an aryl group (e.g. phenyl, tolyl, etc.),
or Y₁ and Y₂, and respectively Y₃ and Y₄, can be the atoms necessary to form a benzene
nucleus (so that the heterocyclic nucleus results to be, for example, an α-naphthothiazole
nucleus, a β-naphthothiazole or a β,β′-naphthothiazole); R₉ represents a hydrogen
atom or an alkyl group (e.g. methyl, ethyl, etc.); R₁₀ and R₁₁ may be either the same
or different and
each is an alkyl group associated with a sulfo group (e.g. 2-sulfoethyl, 3-sulfopropyl,
4-sulfobutyl, 2-hydroxy-3-sulfopropyl, 2-(3-sulfopropoxy)-propyl, p-sulfobenzyl, p-sulfophenethyl,
etc.), A is a hydrogen atom or a cationic group (e.g. lithium salt, potassium salt,
sodium salt, quaternary ammonium salt, pyridinium salt, etc..).
[0026] The alkyl groups included in said substituents Y₁, Y₂, Y₃, Y₄, R₉, R₁₀ and R₁₁ and,
more particularly, the alkyl portions of said alkoxy, alkoxycarbonyl, alkoxycarbonylamino,
hydroxyalkyl, acetoxyalkyl groups and of the alkyl groups associated with a sulfo
group each preferably contain from 1 to 12, more preferably from 1 to 4 carbon atoms,
the total number of carbon atoms included in said groups preferably being no more
than 20.
[0027] The aryl groups included in said substituents Y₁, Y₂, Y₃ and Y₄ each preferably contain
from 6 to 18, more preferably from 6 to 10 carbon atoms, the total number of carbon
atoms included in said groups arriving up to 20 carbon atoms.
[0028] In the present invention, the preferred sulfo-substituted thiacarbocyanine spectral
sensitizing dyes having formula (IV) are the compounds having the following formula
(V):

wherein Y₁, Y₂, Y₃ and Y₄ are the same as before; p and q are integers of 1 to 4;
r and s are integers of 0 to 1; and A is a hydrogen atom or a cationic group (e.g.
lithium salt, potassium salt, sodium salt, quaternary ammonium salt, pyridinium salt,
etc..).
[0030] It is known in the art that a photographic material is obtained through sequential
processing steps, comprising mixing water soluble silver salt and halide salt solutions
in a dispersing medium contained in a reaction vessel under stirring to form silver
halide grains, chemically sensitizing, spectrally sensitizing, incorporating additives
useful in photography, such as couplers, hardeners stabilizers and coating the resulting
composition onto a photographic support base. The sulfo-substituted thia-carbocyanine
spectral sensitizing dyes are added to the silver halide photographic emulsion according
to the present invention after a desalting step in obtaining said emulsion. The desalting
step refers to the step of removing soluble salts which are formed during the precipitation
of silver halide grains.
[0031] It is known that silver halide photographic emulsions can be formed by precipitating
silver halide grains in an aqueous dispersing medium comprising a binder, gelatin
preferably being used as a binder. The silver halide grains are precipitated by reaction
of aqueous solutions of silver salts with aqueous solutions of halide salts during
which water soluble salts are formed.
[0032] In order to avoid soluble salts in the emulsion layers of a photographic material
from crystallizing out after coating and other photographic or mechanical disadvantages
(stickiness, brittlenes, etc.), the soluble salts formed during precipitation have
to be removed.
[0033] There are various methods for desalting a silver halide photographic emulsion, such
as the water washing method of gelled and noodled gelatin emulsion and the precipitation
(or flocculation) method by using inorganic salts (e.g. sodium sulfate), anionic surfactants,
anionic polymers (e.g. polystyrene sulfonic acid) or gelatin derivatives (e.g. carbamoylated
gelatin).
[0034] Other suitable desalting methods are those wherein the dispersing medium and soluble
salts dissolved therein can be removed from the silver halide emulsion on a continous
basis, such as, for example, a combination of dialysis or electrodialysis for the
removal of soluble salts or a combination of osmosis or reverse osmosis for the removal
of the dispersing medium.
[0035] In a particularly preferred enmbodiment, among the known techniques for removing
the dispersing medium and soluble salts while retaining silver halide grains in the
remaining dispersion, ultrafiltration is a particularly advantageous cleaning arrangement
for the purpose of this invention. The use of ultrafiltration for removing soluble
salts is illustrated in Research Disclosures 10208 (1972), 13122 (1975), 13577 (1975)
and 16351 (1977) and in BE 818,237, in US 4,334,012; 4,336,328; 4,758,505 and in DE
2,555,364. Typically, an ultrafiltration unit comprising membranes of inert, non-ionic
polymers is used as a cleaning arrangement. Since silver halide grains are large in
comparison with the dispersing medium and the soluble salts or ions, silver halide
grains are retained by said membranes while the dispersing medium and the soluble
salts dissolved therein are removed.
[0036] The action mechanism of preferred membranes is described in GB 1,307,331. The membranes
used in the ultra-filtration comprise a very thin layer of extremely fine pore texture
supported upon a thicker porous structure. Suitable membranes consist of polymers
such as polyvinylacetate, polyvinylalcohol, polyvinylformate, polyvinylethers, polyamides,
polyimides, polyvinyl and polyvinylidene chloride, aromatic polymers, such as aromatic
polyesters, polytetrafluoroethylene, regenerated cellulose, cellulose esters, such
as cellulose acetate, or mixed cellulose esters. The membranes in question have anisotropic,
semipermeable properties, show considerable mechanical, thermal and chemical stability
and are photographically inert. The membranes are preferably permeable to molecules
having molecular weights of up to about 300,000 and, more especially, of up to about
50,000.
[0037] The pressure of the emulsion contacting the ultrafiltration membrane can vary over
a wide range. Typically, the pressure within the reaction vessel contacting the ultrafiltration
membrane is about 700 kPa, while the outlet pressure of the retentate is up about
70 kPa. The pressure difference across the membrane is typically in the range of from
about 280 to 420 kPa. It is however within the skilled in the art to operate at pressures
outside of these ranges, depending upon the construction of the reaction vessel and
the ultrafiltration unit, the viscosity of the emulsion, the concentration of the
retentate, and the purity of the retentate desired.
[0038] As said before, ultrafiltration is the preferred desalting method to separate dispersing
media and/or soluble salts according to the purpose of this invention and offers a
number of advantages versus other cleaning techniques. One of the advantages of the
ultrafiltration is that the time required for separating dispersing media and soluble
salts is very short, so that the total time of silver halide precipitation is not
substantially increased by the ultrafiltration process.
[0039] It has been found in the present invention that diffusion sensitization due to migration
of sulfo-substituted thiacarbocyanine spectral sensitizing dyes does not occur when
the addition of those dyes to the silver halide photographic emulsion is p made at
the end of the silve4r halide emulsion making, after the desalting step process which
consists in an ultrafiltration process, and before the addition of the gelatin to
reconstitute the silver halide emulsion.
[0040] It has been found that by ultrafiltering at the end of the silver halide emulsion
making, as shown before, a concentrate of silver halide emulsion grains of a given
ionic conductivity and high silver/gelatine ratio can be obtained, stored and then
conveniently processed to get a more effective optical sensitization.
[0041] Thanks to the poor shelling of the silver halide grain by the gelatine there, a lower
amount of cyanine dyes is required to layer the crystal surfaces than is needed by
doing it after the chemical ripening, as it is a common use.
[0042] The more effective the adsorption of dyes on the crystal, the less the molecules
trapped by the gelatine in the layer, the lower the diffusion into the adjacent magenta
layer, as has been checked by conditioning the coated films 7 days at 38°C and 75%
relative humidity.
[0043] The silver halide emulsions may be chemically sensitized using the usual sensitizing
agents. Sulfur containing compounds, gold and noble metal compounds, polyoxyalkylene
compounds are particularly suitable. Methods for chemically sensitizing silver halide
emulsions are described, for example, in Research Disclosure 17643, Section III, 1978.
[0044] The usual antifoggants and stabilizers may be used as described in Research Disclosure
17643, Section VI, 1978, such as azaindenes.
[0045] Other suitable addenda, such as hardeners, coating aids, plasticizers, matting agents,
developing agents, color couplers, absorbing and scattering materials, which may be
added to the silver halide emulsions are described in Research Disclosure 17643, 1978.
[0046] The silver halide color photographic elements of the present invention comprise at
least one blue-sensitive silver silver halide emulsion layer, at least one green-sensitive
silver halide emulsion layer and at least one silver-halide red-sensitive silver halide
emulsion layer, said layers being associated with yellow, magenta and cyan dye-forming
couplers. As used herein, the word "associated" means that the cyan dye-forming couplers
according to the present invention and the silver halide emulsions are positioned
in such a way as to image-wise produce in the photographic layers upon coupling with
the oxidized aromatic primary amine-type developing agents very stable cyan indoaniline
dyes. Such cyan couplers may be incorporated in the silver halide emulsion layers,
in an adjacent layer or in the processing solutions. In a preferred form, the cyan
couplers are incorporated in the silver halide emulsion layer.
[0047] In order to introduce the couplers for use in the present invention into the silver
halide emulsion layer, some conventional methods known to the skilled in the art can
be employed. According to US patents 2,322,027, 2,801,170, 2,801,171 and 2,991,177,
the couplers can be incorporated into the silver halide emulsion layer by the dispersion
technique, which consists of dissolving the coupler in a water-immiscible high-boiling
organic solvent and then dispersing such a solution in a hydrophilic colloidal binder
under the form of very small droplets. The preferred colloidal binder is gelatin,
even if some other kinds of binders can be used.
[0048] Another type of introduction of the couplers into the silver halide emulsion layer
consists of the so-called "loaded-latex technique". A detailed description of such
technique can be found in BE patents 853,512 and 869,816, in US patents 4,214,047
and 4,199,363 and in EP patent 14,921. It consists of mixing a solution of the couplers
in a water-miscible organic solvent with a polymeric latex consisting of water as
a continous phase and of polymeric particles having a mean diameter ranging from 0.02
to 0.2 micrometers as a dispersed phase.
[0049] Another useful method is the Fisher process. According to such a process, couplers
having a water-soluble group, such as a carboxyl group, a hydroxy group, a sulfonic
group or a sulfonamido group, can be added to the photographic layer for example by
dissolving them in an alkaline water solution.
[0050] The cyan couplers for use in the present invention are generally incorporated into
a red-sensitive silver halide emulsion layer to form one of the differently sensitized
silver halide emulsion layers of a multilayer color photographic material. Such material
generally comprises a support base having coated thereon one or more red-sensitive
silver halide emulsion layers, one or more green-sensitive silver halide emulsion
layers, one or more blue-sensitive silver halide emulsion layers and additionally
filter layers, interlayers, protective layers and sub-layers. The layer units can
be coated in any conventional order, but in a preferred layer arrangement the red-sensitive
layes are coated nearest the support and are overcoated by the green-sensitive layers,
a yellow filter layer and the blue-sensitive layers.
[0051] More preferably, the red-sensitive silver halide emulsion layer, associated according
to this invention with the cyan couplers of Formula (I), is composed of two or more
silver halide emulsion layers sensitized to the same spectral region of the visible
spectrum, the uppermost silver halide emulsion layer of which having the highest sensitivity
and the lowermost silver halide emulsion layer having the lowest sensitivity, as described
in GB patent 923,045, in FR patent 2,043,433 and in US patent 4,582,780. Most preferably,
the uppermost red-sensitive silver halide emulsion layer having the highest sensitivity
comprises the cyan couplers of Formula (I).
[0052] The most useful yellow-forming couplers are conventional open-chain ketomethylene
type couplers. Particular examples of such couplers are benzoylacetanilide type and
pivaloyl acetanilide type compounds. Yellow-forming couplers that can be used are
specifically described in US patents 2,875,057, 3,265,506, 3,408,194, 3,551,151, 3,682,322,
3,725,072 and 3,891,445, in DE patents 2,219,917, 2,261,361 and 2,414,006, in GB patent
1,425,020, in JP patent 10,783/76 and in JP patent applications 26,133/72, 73,147/73,
102,636/76, 6,341/75, 123,342/75, 130,442/75, 1,827/76, 87,650/75, 82,424/77 and 115,219/77.
[0053] The most useful magenta-forming couplers are conventional pyrazolone type compounds,
indazolone type compounds, cyanoacetyl compounds, pyrazoletriazole type compounds,
etc, and particularly preferred couplers are pyrazolone type compounds. Magenta-forming
couplers are described for example in US patents 2,600,788, 2,983,608, 3,062,653,
3,127,269, 3,311,476, 3,419,391, 3,519,429, 3,558,319, 3,582,322, 3,615,506, 3,834,908
and 3,891,445,in DE patent 1,810,464, in DE patent applications 2,408,665, 2,417,945,
2,418,959 and 2,424,467 and in JP patent applications 20,826/76, 58,922/77, 129,538/74,
74,027/74, 159,336/75, 42,121/77, 74,028/74, 60,233/75, 26,541/76 and 55,122/78.
[0054] Colored couplers can be used which include those described for example in US patents
3,476,560, 2,521,908 and 3,034,892, in JP patent publications 2,016/69, 22,335/63,
11,304/67 and 32,461/69, in JP patent applications 26,034/76 and 42,121/77 and in
DE patent application 2,418,959.
[0055] DIR (Development Inhibitor Releasing) couplers can be used which include those described
for example in US patents 3,227,554, 3,617,291, 3,701,783, 3,790,384 and 3,632,345,
in DE patent applications 2,414,006, 2,454,301 and 2,454,329, in GB patent 953,454,
in JP patent applications 69,624/77, 122,335/74 and 16,141/76.
[0056] In addition to DIR couplers, some other compounds which release development inhibitors
upon development can also be present in the light-sensitive material. Such kind of
DIR compounds is described for example in US patents 3,297,445 and 3,379,529, in DE
patent application 2,417,914, in JP patent applications 15,271/77 and 9,116/78.
[0057] Two or more kinds of the couplers described above can be incorporated in the same
layer, or the same coupler can also be present in two or more layers.
[0058] The layers of the photographic material can contain various colloids, alone or in
combination, such as binding materials, as for example described in Research Disclosure
17643, IX, December 1978.
[0059] The above described emulsions can be coated onto several support bases (cellulose
triacetate, paper, resincoated paper, polyester, and the like) by adopting various
methods, as described in Research Disclosure 17643, XV and XVI, December 1978.
[0060] The present invention is not limited to photographic materials with a particular
type of emulsion or silver halides. It can therefore find an application with photographic
materials containing different types of emulsions or silver halides, such as for example
those described in Research Disclosure 17643, I, December 1978.
[0061] The silver halide emulsions prepared according to the process of this invention may
be used as photosensitive emulsions for various photographic materials, such as high
surface sensitivity or high internal sensitivity negative emulsions, surface-fogged
or unfogged direct-positive emulsions, print-out emulsions, reversal emulsions, emulsions
for black-and-white materials, for color materials, radiographic materials, transfer
color materials, and the like.
[0062] The photographic elements, including a silver halide emulsion prepared according
to this invention, may be processed to form a visible image upon association of the
silver halides with an alkaline aqueous medium in the presence of a developing agent
contained in the medium or in the material, as known in the art. Suitable developing
compounds are in particular the p-phenylenediamine derivatives, for example 2-amino-5-diethylamino-toluene
chlorydrate (called CD2), 2-amino-N-ethyl-N-(β-methanesulfonamido)-m-toluidine sesquisulfate
monohydrate (called CD3), 4-amino-3-methyl-N-ethyl-N-(β-hydroxyethyl)-aniline sulfate
(called CD4).
[0063] In the case of color photographic materials, the processing comprises at least a
color developing bath and, optionally, a prehardening bath, a neutralizing bath, a
first (black and white) developing bath, etc. These baths are well known in the art
and are described for instance in Research Disclosure 17643, 1978.
[0064] After color development, the image-wise developed metallic silver and the remaining
silver salts generally must be removed from the photographic element. This is performed
in separate bleaching and fixing baths or in a single bath, called blix, which bleaches
and fixes the image in a single step. The bleaching bath is a water solution having
a pH equal to 5.60 and containing an oxidizing agent, normally a complex salt on an
alkali metal or of ammonium and of trivalent iron with an organic acid, e. g., EDTA.Fe.NH₄,
wherein EDTA is the ethylenediaminotetracetic acid. While processing, this bath is
continously aired to oxidize the divalent iron which forms while bleaching the silver
image and regenerated, as known in the art, to maintain the bleach effectiveness.
Poor working of these operations may cause loss of cyan density of the dyes.
[0065] Further to the above mentioned oxidizing agents, the blix bath contains known fixing
agents, such as for example ammonium or alkali metal thiosulfates. Both bleaching
and fixing baths can contain other additives, e. g. polyalkyleneoxide derivatives,
as described in GB patent 933,008 in order to increase the effectiveness of the bath,
or thioethers known as bleach accelerators.
[0066] The present invention will now be illustrated by the following examples, but not
limited to them.
EXAMPLE 1. (prior art)
[0067] A photographic silver chlorobromoiodide emulsion with 5.13 mol% chloride, 87.7 mol%
bromide and 7.17 mol% iodide with an average grain size of 0.43 µm was chemically
sensitized with gold, thiocyanate, p-toluensulfonate and p-toluenethiosulfonate and
then stabilised with N-ethyl-benzothiazolium iodide.
[0068] The above emulsion was then divided into seven parts and each part was finalled at
38°C to give the compositions as follows:
1) A methanolic solution of 0.046 moles/mol Ag of the red sensitizers (S-10) and of
0.286 moles/mol Ag of the red sensitizer (S-11) was added to get a coverage of 0.332
moles of the two dyes per mol Ag; the emulsion was paused 20 minutes under stirring,
then added of a water solution of 4-hydroxy-6-methyl tetrazaindene and of cyan coupler
(C-1) in an amount of 0.126 moles/mol Ag.
2) The emulsion was optically sensitized and stabilised as above, with the only replacement
of cyan coupler (C-1) with non-leuco cyan coupler (I-19), in amount of 0.094 moles/mol
Ag.
The compositions 3 to 7 were finalled as the composition 2, with the only replacement
of the pair of optical sensitisers (S-10) and (S-11) with the following ones, in the
same molar ratio to silver :
3) (S-10)
4) (S-11)
5) (S-5)
6) (S-6)
7) (S-7)
[0069] Each of the compositions was coated on a cellulose triacetate base at 30 minutes
after the end of finalling; the same compositions were separately coated after 15
hours holding at 40°C under stirring.
[0070] A gelatin layer was coated on each film as protective top-coat, containing the monochloro-dihydroxy-triazine
hardener. The films were kept 7 days at room condition to let them harden, then aged
7 days at 38°C and 75% relative humidity. Each of the film samples was exposed through
a continuous wedge at 5500°K, processed in a standard Kodak EP-2 processing color
chemistry as described in US patent No. 4,346,873, then read at an automatic densitometer.
[0071] Table 1 compares the speed values of the sample films obtained by coating the compositions
1 to 7 30 minutes after the end of finalling with the speed values of the same sample
films obtained by coating the same compositions after 15 hours holding at 40°C under
stirring. The speed values were measured at a value of optical density of 0.20+Fog.

[0072] It can be clearly seen the loss of speed of the film 2, containing the same pair
of red spectral sensitizers (S-10) and (S-11) of film 1 and the non-leuco cyan coupler
(I-19) in place of the coupler (C-1). Each of these sensitizers (S-10) and (S-11),
both of a cationic type, show the similar problem, when they are singularly combined
with the non-leuco cyan coupler (I-19) (films Nos. 3 and 4).
[0073] On the contrary, it can be seen (films Nos. 5, 6 and 7) that no substantial desensitization
occurs when the sulfo substituted red sensitizers of anionic type (S-5), (S-6) and
(S-7) have been used in combination with the non-leuco cyan coupler (I-19).
EXAMPLE 2
[0074] A photographic silver iodobromide emulsion with 91 mol% bromide and 9 mol% iodide
with an average grain size of 1.13 µm was prepared by double jetting AgNO₃ and KBr
plus KCl in presence of a gelatin water solution containing KI plus KCl. At the end
of the precipitation, the obtained emulsion was fed to an ultrafiltration unit fitted
with four polysulfone semipermeable membranes, type PTHK000C5, (commercially available
from Millipore Co., USA), having a total working surface of 1.84 m² and a NMWL (Nominal
Molecular Weight Limit) of 100,000 and washed by diafiltration while continously adding
makeup water to the emulsion to get a concentrate of ionic conductivity 1000 S, then
chilled and stored.
[0075] Part of the concentrate was then used to reconstitute an emulsion (control) of silver
to gelatin ratio of 1.2.
[0076] Another part (a) of the same concentrate was added of a methanol solution of the
sensitizing dye (S-5), in amount of 0.334 mmoles/mol Ag. A third part (b) of the same
concentrate was added with 0.028 mmoles/mol Ag of sensitizing dye (S-8), 0.293 mmoles/mol
Ag of sensitizing dye (S-5) and 0.016 mmoles/mol Ag of sensitizing dye (S-9). A fourth
part (c) of the same concentrate was added with 0.028 mmoles/mol Ag of sensitizing
dye (S-8), 0.293 mmoles/mol Ag of sensitizing dye (S-1) and 0.016 mmoles/mol Ag of
sensitizing dye (S-9).
[0077] Compositions (a), (b) and (c) were then added of the same amount of gelatin as the
control emulsion, before starting the chemical ripening with gold, thiocyanate, p-toluensulfonate
and p-toluene-thiosulfonate, and N-ethyl-benzothiazolium iodide.
[0078] Control emulsion was divided into three parts, that were optically sensitized during
the finalling step before coating, using the same amounts of the dyes as in the respective
emulsions sensitized according to the present invention obtaining composition (a′)
with sensitizing dye (S-5), composition (b′) with sensitizing dyes (S-8)+(S-5)+(S-9)
and composition (c′) with sensitizing dyes (S-8)+(S-1)+(S-9).
[0079] The three compositions for use in the present invention (a), (b) and (c) and the
three control compositions (a′), (b′) and (c′) were then added of the stabilizer 4-hydroxy-6-methyl
tetrazaindene, antifoggants, surfactants and an amount of 0.094 moles/mol Ag of the
cyan coupler (I-19), and coated on a triacetate base, at a silver coverage of 2 g
Ag/sqm, with a gelatin layer as a top-coat, containing the hardener monochloro dihydroxy-triazine,
obtaining, respectively, the films Nos. 1, 2 and 3 of the present invention and the
control films Nos. 4, 5 and 6.
[0080] Another set of films, respectively, films Nos.7, 8 and 9 of the present invention
and control films Nos. 10, 11 and 12 were each coated using the compositions (a),
(b), (c), (a′), (b′) and (c′) as cyan layers, then each overcoated with the same magenta
layer. This was obtained from a silver bromoiodide emulsion prepared as above, chemically
and optically sensitisied in a conventional way, using the (S-12) sensitizing dye,
then added of the (C-2) colour coupler; films 7 to 12 were overlayered with a gelatin
top-coat, as above.
[0081] Samples of films Nos.1 to 12 were stored for 7 days at room condition to let them
harden, then aged 7 days at 38°C and 75% relative humidity. Each of the film samples
was exposed through a continuous wedge at 5500°K, then processed in a standard Kodak
EP-2 processing color chemistry with conditions similar to those stated in US Pat.
No. 4,346,873.
[0082] After processing, status D densitometry was measured. Table 2 reports the sensitometric
values of the cyan coatings, after 15 days on shelf life :

[0083] It can be seen the increase of speed obtained by optically sensitizing the emulsion
concentrate after the ultrafiltration process (films Nos. 1, 2 and 3), versus the
speed obtained by optically sensitizing the reconstituted and chemically ripened emulsions,
as it is common practice (control films Nos. 4, 5 and 6).
[0084] Figs. 1 and 2 show the sensitization spectra of samples exposed to a Jarrel-Ash Spectrometer
and processed as above.
[0085] Fig.1 shows the comparison between the magenta and cyan spectra of the films 7 (invention:
continuous line) and 10 (control: dashed line), whose cyan layers were sensitized
with the same sensitizing dye (S-5), respectively, after the desalting step process
(according to the present invention) and before coating (control).
[0086] Fig.2 shows the comparison between the magenta and cyan spectra of the the films
9 (invention: continuous line) and 12 (control: dashed line), whose cyan layers were
sensitized with the same sensitizing dyes (S-8)+(S-1)+(S-9), respectively, after the
desalting step process (according to the present invention) and before coating (control).