EP0816071B1 - A heat sensitive imaging element and a method for producing lithographic plates therewith - Google Patents

A heat sensitive imaging element and a method for producing lithographic plates therewith Download PDF

Info

Publication number
EP0816071B1
EP0816071B1 EP19970201962 EP97201962A EP0816071B1 EP 0816071 B1 EP0816071 B1 EP 0816071B1 EP 19970201962 EP19970201962 EP 19970201962 EP 97201962 A EP97201962 A EP 97201962A EP 0816071 B1 EP0816071 B1 EP 0816071B1
Authority
EP
European Patent Office
Prior art keywords
layer
imaging element
heat mode
mode imaging
element according
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Lifetime
Application number
EP19970201962
Other languages
German (de)
French (fr)
Other versions
EP0816071A1 (en
Inventor
Luc Leenders
Bart Aerts
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Agfa Gevaert NV
Original Assignee
Agfa Gevaert NV
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Agfa Gevaert NV filed Critical Agfa Gevaert NV
Priority to EP19970201962 priority Critical patent/EP0816071B1/en
Publication of EP0816071A1 publication Critical patent/EP0816071A1/en
Application granted granted Critical
Publication of EP0816071B1 publication Critical patent/EP0816071B1/en
Anticipated expiration legal-status Critical
Expired - Lifetime legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41CPROCESSES FOR THE MANUFACTURE OR REPRODUCTION OF PRINTING SURFACES
    • B41C1/00Forme preparation
    • B41C1/10Forme preparation for lithographic printing; Master sheets for transferring a lithographic image to the forme
    • B41C1/1008Forme preparation for lithographic printing; Master sheets for transferring a lithographic image to the forme by removal or destruction of lithographic material on the lithographic support, e.g. by laser or spark ablation; by the use of materials rendered soluble or insoluble by heat exposure, e.g. by heat produced from a light to heat transforming system; by on-the-press exposure or on-the-press development, e.g. by the fountain of photolithographic materials
    • B41C1/1033Forme preparation for lithographic printing; Master sheets for transferring a lithographic image to the forme by removal or destruction of lithographic material on the lithographic support, e.g. by laser or spark ablation; by the use of materials rendered soluble or insoluble by heat exposure, e.g. by heat produced from a light to heat transforming system; by on-the-press exposure or on-the-press development, e.g. by the fountain of photolithographic materials by laser or spark ablation

Definitions

  • the present invention relates to a heat mode imaging material for making a lithographic printing plate.
  • the present invention further relates to a method for preparing a printing plate from said heat mode imaging material.
  • Lithography is the process of printing from specially prepared surfaces, some areas of which are capable of accepting lithographic ink, whereas other areas, when moistened with water, will not accept the ink.
  • the areas which accept ink form the printing image areas and the ink-rejecting areas form the background areas.
  • a photographic material is made imagewise receptive to oily or greasy ink in the photo-exposed (negative working) or in the non-exposed areas (positive working) on a hydrophilic background.
  • lithographic plates also called surface litho plates or planographic printing plates
  • a support that has affinity to water or obtains such affinity by chemical treatment is coated with a thin layer of a photosensitive composition.
  • Coatings for that purpose include light-sensitive polymer layers containing diazo compounds, dichromate-sensitized hydrophilic colloids and a large variety of synthetic photopolymers. Particularly diazo-sensitized systems are widely used.
  • the exposed image areas become insoluble and the unexposed areas remain soluble.
  • the plate is then developed with a suitable liquid to remove the diazonium salt or diazo resin in the unexposed areas.
  • Imaging elements which comprise a photosensitive composition are called photo mode imaging elements
  • heat mode imaging elements the surface of which can be made image-wise receptive or repellant to ink upon image-wise exposure to heat obtained by conversion of irradiation into heat and in most cases a subsequent development are also known for preparing lithographic printing plates.
  • a particular disadvantage of photo mode imaging elements such as described above for making a printing plate is that they have to be shielded from the light. Furthermore they have a problem of sensitivity in view of the storage stability and they show a lower resolution. The trend towards heat mode printing plate precursors is clearly seen in the market.
  • interesting heat mode imaging materials are those that have as heat mode layer a layer capable of being ablated by actinic radiation as described in e.g. US-P-5,379,698, 5,353,705, EP-A-683,728, 678,380, 649,374, 580,393, 580,394 and DE 2,512,038.
  • Particularly interesting heat sensitive imaging elements are those where said layer capable of being ablated by actinic radiation is a layer of a low melting, non-toxic metal with a low thermal conductivity metal such as aluminum, bismuth, tin, indium, tellurium etc.
  • a problem that arises with the present ablation based printing plate precursors is that said ablation process can cause formation of debris originating from the ablatable layer itself or of other functional layers of said precursor. Said debris can interfere with transmission of the laser beam (e.g. by depositing on a focusing lens or as an aerosol that partially blocks transmission) or with the transport of the imaging element during or after recording when this debris remains loosely adhered to the plate and deposition of said debris occurs on the transport rollers. So, there is a need for heat mode imaging elements based on ablatable layers which upon actinic radiation do not lead to said debris related problems.
  • a heat mode imaging element comprising in the order given:
  • a method for obtaining a lithographic printing plate comprising the steps of:
  • lithographic printing plates of high quality can be obtained according to the method of the present invention using an imaging element as described above. More precisely it has been found that the exposure of the heat mode imaging element does not cause debris during said step or the debris that is formed during said exposure does not become free in the atmosphere. The debris which may be formed upon exposure remains on the plate and nevertheles can be easily removed afterwards.
  • a cross-linked layer is a layer which is not soluble in a liquid without destroying the structure of at least one of the components comprised in said cross-linked layer.
  • Cross-linking of a layer can be effected by an addition or a condensation reaction.
  • Said cross-linked layer is obtainable by curing a composition comprising monomers and/or polymers having at least two reactive groups and/or a multifunctional compound whereof the functions can react with said reactive group of said monomer and/or polymer;
  • the cross-linked oleophilic layer can be obtained by e.g. thermal or radiation curing.
  • Thermal curing can be performed by using monomers and/or polymers having at least two chemical reactive groups and/or a multifunctional compound whereof the functions can react with said reactive group of said polymer.
  • polymers having reactive groups are polyesters comprising hydroxy groups or carboxyl groups, polyamides comprising amino groups or carboxyl groups, polymers and copolymers of vinylphenol, polymers and copolymers of vinylalcohol etc.
  • monomers having reactive groups and/or of multifunctional compounds are di- or polyisocyanates, di-or poly epoxides, di- or polycarboxylic acids and derivatives thereof, di- or poly alcohols or phenols, di- or poly amines etc.
  • Thermal curing can also be performed by using monomers which will cross-link with each other under the influence of heat e.g. polyols such as ditrimethylolpropane.
  • said thermal curing is effected with compounds which can react under the influence of a reagent obtained by decomposition of a heat sensitive compound.
  • said reactive compounds are curable by reaction with a free radical e.g. monomers or monomer mixtures, having at least one polymerizable ethylenically unsaturated groups, at least one monomer having at least two polymerizable ethylenically unsaturated groups.
  • a monomer of said monomer mixtures can be a monomer having only one polymerizable ethylenically unsaturated group but preferably only monomers containing at least two polymerizable ethylenically unsaturated groups are used.
  • Particularly preferred are urethane type monomers, such as those disclosed in EP-A 502562 and 653684 and unsaturated esters of polyols, especially esters of polyols and an alpha-methylene carboxylic acid.
  • esters of a polyol and an alpha-methylene carboxylic acid are: ethylene diacrylate, glycerol tri(meth)acrylate, ethylene dimethacrylate, 1,3-propanediol di(meth)acrylate, 1,2,4-butanetriol tri(meth)acrylate, 1,4-cyclohexanediol di(meth)acrylate, 1,4-benzenediol di(meth)acrylate, pentaerythritol tetra(meth)acrylate, dipentaerythritol pentaacrylate, 1,5-pentanediol di(meth)acrylate, the bis acrylates and methacrylates of polyethylene glycols of molecular weight 200-500, and the like.
  • monomers suitable for use in the oleophilic photopolymerizable composition in accordance with the present invention are e.g. the monomers disclosed in EP-A 502562, DE-OS no. 4,109,239, 4,005,231, 3,643,216, 3,625,203, 3,516,257, 3,516,256 and 3,632,657, which therefor are incorporated herein by reference. Further types of monomers suitable for use in the oleophilic photopolymerizable composition in accordance with the present invention are disclosed in EP-A 522,616. It will be clear that these monomers can be used in admixture.
  • a prepolymer with at least one polymerizable ethylenically unsaturated group preferably with two or more polymerizable ethylenically unsaturated groups can be used .
  • said prepolymer has a numerical average molecular weight of not more than 25,000, more preferably of not more than 10,000.
  • At least the monomer or the prepolymer has at least two polymerizable ethylenically unsaturated groups.
  • said reactive compound or mixture of reactive compounds is curable by reaction with an acid.
  • the acid-sensitive compound can be a monomer capable of undergoing cationic polymerization which is well known to one skilled in the art.
  • said mixture of compounds comprises a compound with at least two hydroxy groups and a reagent which is capable of crosslinking under the influence of an acid said compound with at least two hydroxy groups.
  • said mixture of compounds comprises a compound comprising at least two latent or masked electrophilic groups that are transformed into electrophilic groups upon reaction with acid and a compound containing an aromatic moiety that is susceptible to electrophilic aromatic substitution.
  • Monomers capable of undergoing cationic polymerization are preferably compounds comprising at least one vinylether, propenylether or epoxy function. At least a part of said monomers comprises at least two of said functions. More preferably all of said compounds comprise at least two of said functions. Most preferably polyfunctional epoxy compounds are used based e.g. on the reaction product of Bisphenol A, that is 2,2-bis (4-hydroxyphenyl) propane and epichlorohydrin, for example the resins sold under the registered trademark DER by Dow Chemicals.
  • Compounds comprising at least two hydroxy groups can be low molecular compounds but may also be polymers.
  • Reagents which are capable of crosslinking under the influence of an acid said compounds with at least two hydroxy groups are e.g. compounds comprising at least two isocyanate groups, for example the compounds sold under the registered trade name DESMODUR by Bayer, tetraalkoxymethyl glycolurils, for example the compound sold under the registered trade name CYMEL 1170 by Dyno Cyanamid and compounds represented by the following formula wherein Z represents -NRR' or a phenyl group, R, R' and R 1 to R 4 each independently represents a hydrogen atom, CH 2 OH or CH 2 OR 5 in which R 5 represents an alkyl group.
  • At least part of said compounds comprising at least two hydroxy groups or of said compounds which are capable of cross-linking under the influence of an acid said compounds with at least two hydroxy groups contains at least three functional groups.
  • Compounds comprising at least two latent or masked electrophilic groups may be aliphatic compounds comprising at least two hydroxy functions or compounds comprising an aromatic ring substituted with at least two latent or masked electrophilic groups or compounds comprising at least two aromatic rings comprising at least one latent or masked electrophilic group.
  • the latent or masked electrophilic group is preferably -CH 2 OR 6 , wherein R 6 represents a hydrogen atom or an acyl rest. Also preferably said aromatic rings are substituted phenols.
  • Compounds containing an aromatic moiety that are susceptible to electrophilic aromatic substitution may be low molecular weight compounds but are preferably polymers, more preferably polymers containing a phenolic moiety, most preferably polyvinyl 4-hydroxy-styreen or novolac resins. At least part of said compounds comprising at least two latent or masked electrophilic groups contains at least three latent or masked electrophilic groups and/or the compounds containing an aromatic moiety that are susceptible to electrophilic aromatic substitution are susceptible to a three-fold electrophilic aromatic substitution.
  • said reactive compound or mixture of reactive compounds can be cured by reaction with an alkali.
  • Compounds which can undergo curing under the influence of alkali are e.g. polyfunctional epoxy compounds. More preferably polyfunctional epoxy compounds are used based on the reaction product of Bisphenol A, that is 2,2-bis (4-hydroxyphenyl) propane and epichlorohydrin, for example the resins sold under the registered trademark DER by Dow Chemicals.
  • azo and peroxide compounds are used e.g. 2,2' -azobisisobutyronitrile and benzoylperoxide. Said compounds are preferably used in an amount ranging from 0.001 to 1 g/m 2 , more preferably in an amount ranging from 0.01 to 0.25 g/m 2 .
  • Acid precursors which can decompose under the influence of heat for use in connection with the present invention include onium salts, in particular iodonium, sulfonium, phosphonium, selenonium, diazonium and arsonium salts.
  • acid precursors which can decompose under the influence of heat for use in connection with the present invention include inorganic nitrates such as e.g. Mg(NO 3 ) 2 .6H 2 O or organic nitrates such as guanidinium nitrate, ammonium nitrate, pyridinium nitrate etc... as disclosed in EP 462763, WO 81/1755, US 4.370.401, compounds that release a sulfonic acid such as 3-sulfolenes, e.g.
  • thermolytic compounds disclosed in GB 1.204.495 2,5-dihydrothio-thiophene-1,1-dioxides as disclosed in US 5.312.721, thermolytic compounds disclosed in GB 1.204.495, co-cristalline adducts of an amine and an volatile organic acid as disclosed in US 3.669.747, aralkylcyanoforms as disclosed in US 3.166.583, benzoinetosylaat, 2-nitrobenzyltosylaat and alkyl esters of organic sulfonic acids as described in EP 542008, thermo-acids disclosed in EP 159725 and DE 3515176, squaric acid generating compounds as disclosed in US 5.278.031, acid generating compounds disclosed in US 5.225.314 and US 5.227.277 and RD 11511 of November 1973.
  • Said heat sensitive acid precursors are preferably used in an amount ranging from 0.01 to 1 g/m 2 .
  • Heat sensitive alkali precursors comprises t.-butyloxycarbonyl masked amines and dicyandiamides as described by G. Eastmond et al. in Comprehensive Polymer Science , Vol 6, Pergamon Press.
  • Said heat sensitive alkali precursors are preferably used in an amount ranging from 0.01 to 1 g/m 2 .
  • the curing is performed by radiation curing.
  • Radiation curing can be effected by using U.V. curable polymers and/or monomers containing epoxy groups.
  • Radiation curing can also be effected with the compositions described above comprising compounds which can react under the influence of a reagent obtained by decomposition of a heat sensitive compound wherein the substance which yields said reagent is replaced by a substance which yields an identical or similar reagent by decomposition under the influence of radiation, preferably U.V. radiation.
  • the substances yielding said reagent under the influence of heat is identical with the substance yielding said reagent under the influence of radiation.
  • said cross-linked layer is formed by applying at least one ethylenically unsaturated monomer and a compound which can yield radicals by radiation on a layer comprising a metal and/or a metallic derivative capable of being ablated by actinic radiation and deposited under vacuum on a lithographic base having a hydrophilic support and performing the cross-linking by UV-radiation in the same passage through the same vacuum chamber.
  • Acid precursors which can decompose under the influence of radiation for use in connection with the present invention include the above mentioned onium salts.
  • Non-ionic acid precursors are also suitable for use in this invention.
  • examples of these include compounds of the formula : RCH 2 X, RCHX 2 , RCX 3 , R(CH 2 X) 2 and R(CH 2 X) 3 wherein X is Cl, Br, F or CF 3 SO 3 and R is an aromatic group or an aliphatic group.
  • non-ionic acid precursors are haloalkyl-substituted s-triazines as disclosed in EP-A 672954, o-quinone diazides, photo acid generating agents having an o-nitrobenzyl type protective group as described in Polymer Sci. , by S. Hayase et al, 25 , 573 (1987); the compounds which are subjected to a photodecomposition to generate a sulfonic acid, represented by iminosulfonates as described in Polymer Preprints Japan, by M.
  • compounds in which the above photosensitive acid precursors are introduced into a primary chain or a side chain of a polymer can be used.
  • examples thereof include the compounds described in e.g. J.Am.Chem.Soc. , by M.E. Woodhouse et al, 104 , 5586 (1982); J.Imaging Sci. , by S.P. Pappas et al, 30 (5), 218 (1986); etc..
  • the curing is performed by using electron beam curing on curable polymers obtainable from (meth)acrylate groups.
  • said curing is performed by electron beam curing of (meth)acrylate monomers, particularly of polyfunctional (meth)acrylate monomers.
  • said cross-linked layer is formed by the following steps:
  • the thickness of the oleophilic layer comprising a cross-linked polymer is preferably between 0.1 ⁇ m and 4 ⁇ m and more preferably between 0.1 ⁇ m and 1 ⁇ m.
  • the amount of the reactive compound or mixture of reactive compounds ranges preferentially from 0.1 to 5.8 g/m 2 , more preferably from 0.5 to 3 g/m 2
  • the layer comprising a metal or a metal derivative in accordance with the present invention is preferably a vapour or vacuum deposited layer.
  • Suitable metals are e.g. aluminum, bismuth, tin, titanium, indium, tellurium etc.. Preferably bismuth is used.
  • metal derivatives can be used such as metal oxides, metal suboxides, metal carbides, metal nitrides etc..
  • the thickness of the layer comprising a metal or a metal derivative is not more than 3 ⁇ m and most preferably not more than 1 ⁇ m. In case a vapour or vacuum deposited metal layer is used as a recording layer the thickness thereof is preferably such that the optical density is between 0.3 and 5 and more preferably between 1 and 4.
  • the coating of the hydrophilic surface of the lithographic base with the layer containing a metal and/or a metallic derivative and with an electron beam cured layer is preferably executed as an in-line production.
  • the coating of the hydrophilic surface of the lithographic base with the layer containing a metal and/or a metallic derivative and with an UV-radiation or electron beam curable layer and the curing of said last layer is preferably executed consecutively in the same vacuum passage.
  • the lithographic base can be anodised aluminum.
  • a particularly preferred lithographic base is an electrochemically grained and anodised aluminum support.
  • an anodised aluminum support may be treated to improve the hydrophilic properties of its surface.
  • the aluminum support may be silicated by treating its surface with sodium silicate solution at elevated temperature, e.g. 95°C.
  • a phosphate treatment may be applied which involves treating the aluminum oxide surface with a phosphate solution that may further contain an inorganic fluoride.
  • the aluminum oxide surface may be rinsed with a citric acid or citrate solution. This treatment may be carried out at room temperature or can be carried out at a slightly elevated temperature of about 30 to 50°C.
  • the aluminum oxide surface may be treated with polyvinyl phosphonic acid.
  • a further interesting treatment involves rinsing the aluminum oxide surface with a bicarbonate solution. It is further evident that one or more of these post treatments may be carried out alone or in combination.
  • the lithographic base comprises a glass support or a flexible support, such as e.g. paper or plastic film, provided with a cross-linked hydrophilic layer.
  • a particularly suitable cross-linked hydrophilic layer may be obtained from a hydrophilic binder cross-linked with a cross-linking agent such as formaldehyde, glyoxal, polyisocyanate or a hydrolysed tetra-alkylorthosilicate. The latter is particularly preferred.
  • hydrophilic binder there may be used hydrophilic (co)polymers such as for example, homopolymers and copolymers of vinyl alcohol, acrylamide, methylol acrylamide, methylol methacrylamide, acrylic acid, methacrylic acid, hydroxyethyl acrylate, hydroxyethyl methacrylate or maleic anhydride/vinylmethylether copolymers.
  • the hydrophilicity of the (co)polymer or (co)polymer mixture used is preferably the same as or higher than the hydrophilicity of polyvinyl acetate hydrolyzed to at least an extent of 60 percent by weight, preferably 80 percent by weight.
  • the amount of crosslinking agent, in particular of tetraalkyl orthosilicate, is preferably at least 0.2 parts by weight per part by weight of hydrophilic binder, preferably between 0.5 and 5 parts by weight, more preferably between 1.0 parts by weight and 3 parts by weight.
  • a cross-linked hydrophilic layer in a lithographic base used in accordance with the present embodiment preferably also contains substances that increase the mechanical strength and the porosity of the layer.
  • colloidal silica may be used.
  • the colloidal silica employed may be in the form of any commercially available water-dispersion of colloidal silica for example having an average particle size up to 40 nm, e.g. 20 nm.
  • inert particles of larger size than the colloidal silica can be added e.g. silica prepared according to Stöber as described in J. Colloid and Interface Sci., Vol.
  • alumina particles or particles having an average diameter of at least 100 nm which are particles of titanium dioxide or other heavy metal oxides.
  • the thickness of a cross-linked hydrophilic layer in a lithographic base in accordance with this embodiment may vary in the range from 0.2 to 25 ⁇ m and is preferably 1 to 10 ⁇ m.
  • cross-linked hydrophilic layers for use in accordance with the present invention are disclosed in EP-A 601240, GB-P-1419512, FR-P-2300354, US-P-3971660, US-P-4284705 and EP-A 514490.
  • glass support of a lithographic base in connection with the present embodimen glass can be used having a thickness of not more than 0.5 mm, a failure stress of at least 10 7 Pa and a Youngs modulus of not more than 10 11 Pa
  • plastic film e.g. substrated polyethylene terephthalate film, cellulose acetate film, polystyrene film, polycarbonate film etc.
  • the plastic film support may be opaque or transparent. When the support is transparent, the exposure can take place through the support.
  • the heat mode imaging element used in accordance with the invention may contain additional layers such as e.g. one or more layers between the lithographic base and the layer comprising a metal and/or a metallic derivative for improving the adhesion of the layer comprising a metal and/or a metallic derivative to the lithographic base or intermediate layers between the oleophilic layer and the layer comprising a metal and/or a metallic derivative.
  • the shelf life of the imaging element may be influenced by the composition of the intermediate layers.
  • the heat mode imaging element in connection with the present invention is preferably exposed using a laser.
  • lasers are e.g. semiconductor lasers, YAG lasers e.g. Nd-YAG lasers, Argon lasers etc..
  • the laser may have a power output between 40 and 7500mW and preferably operates in the infrared part of the spectrum.
  • Rubbing of the image-wise exposed heat mode recording material can be done using a brush, a cotton pad etc..
  • Rubbing of the heat mode recording material in connection with the present invention can be carried out without the presence of a liquid. In this way images of good contrast and high density can be obtained. Rubbing may however also be carried out in the presence of a liquid for a better cleaning of the exposed areas without any detrimental effect on the image quality.
  • the liquid is a non-swelling agent for the cross-linked oleophilic layer.
  • the obtained dispersion was coated on a polyethyleneterephthalate film support (coated with a hydrophilic adhesion layer) to a wet coating thickness of 50 g/m 2 , dried at 30 °C, and subsequently hardened by subjecting it to a temperature of 57 °C for 1 week.
  • a cylindrical vacuum chamber contained an electrically heated refractory tray in which bismuth was present as metal vapour source. Under high vacuum (i.e. at a pressure of about 10 -2 Pa) the obtained metal vapour was directed towards the hydrophilic surface of the lithographic base and was deposited thereon at a thickness of 0.2 ⁇ m.
  • Imaging elements as described above were subjected to a scanning NdYAG infrared laser (scanspeed 100 m/s, spot size 15 ⁇ m, 3600 dpi and the power on the plate surface was varied from 2.0 to 6.0 W). Atfer imaging the plates were rubbed with a cotton pad and afterwards rinsed with water to remove at the exposed areas the oleophilic layer and the metallic layer resulting in positive working lithographic printing plates.
  • the obtained lithographic printing plates could be used to print on a conventional offset press such as a Rotamatic R35 using a commonly employed ink such as AB Dick 10/20 and fountain. Excellent copies were obtained.

Description

1. Field of the invention.
The present invention relates to a heat mode imaging material for making a lithographic printing plate. The present invention further relates to a method for preparing a printing plate from said heat mode imaging material.
2. Background of the invention.
Lithography is the process of printing from specially prepared surfaces, some areas of which are capable of accepting lithographic ink, whereas other areas, when moistened with water, will not accept the ink. The areas which accept ink form the printing image areas and the ink-rejecting areas form the background areas.
In the art of photolithography, a photographic material is made imagewise receptive to oily or greasy ink in the photo-exposed (negative working) or in the non-exposed areas (positive working) on a hydrophilic background.
In the production of common lithographic plates, also called surface litho plates or planographic printing plates, a support that has affinity to water or obtains such affinity by chemical treatment is coated with a thin layer of a photosensitive composition. Coatings for that purpose include light-sensitive polymer layers containing diazo compounds, dichromate-sensitized hydrophilic colloids and a large variety of synthetic photopolymers. Particularly diazo-sensitized systems are widely used.
Upon imagewise exposure of such light-sensitive layer the exposed image areas become insoluble and the unexposed areas remain soluble. The plate is then developed with a suitable liquid to remove the diazonium salt or diazo resin in the unexposed areas.
Imaging elements which comprise a photosensitive composition are called photo mode imaging elements
On the other hand, heat mode imaging elements, the surface of which can be made image-wise receptive or repellant to ink upon image-wise exposure to heat obtained by conversion of irradiation into heat and in most cases a subsequent development are also known for preparing lithographic printing plates. A particular disadvantage of photo mode imaging elements such as described above for making a printing plate is that they have to be shielded from the light. Furthermore they have a problem of sensitivity in view of the storage stability and they show a lower resolution. The trend towards heat mode printing plate precursors is clearly seen in the market.
Interesting heat mode imaging materials are those that have as heat mode layer a layer capable of being ablated by actinic radiation as described in e.g. US-P-5,379,698, 5,353,705, EP-A-683,728, 678,380, 649,374, 580,393, 580,394 and DE 2,512,038. Particularly interesting heat sensitive imaging elements are those where said layer capable of being ablated by actinic radiation is a layer of a low melting, non-toxic metal with a low thermal conductivity metal such as aluminum, bismuth, tin, indium, tellurium etc.
A problem that arises with the present ablation based printing plate precursors is that said ablation process can cause formation of debris originating from the ablatable layer itself or of other functional layers of said precursor. Said debris can interfere with transmission of the laser beam (e.g. by depositing on a focusing lens or as an aerosol that partially blocks transmission) or with the transport of the imaging element during or after recording when this debris remains loosely adhered to the plate and deposition of said debris occurs on the transport rollers. So, there is a need for heat mode imaging elements based on ablatable layers which upon actinic radiation do not lead to said debris related problems.
3. Summary of the invention.
It is an object of the present invention to provide a heat mode imaging element for making in a convenient way a lithographic printing plate having excellent printing properties.
It is another object of the present invention to provide a method for obtaining in a convenient way a positive working lithographic printing plate of a high quality using said imaging element.
Further objects of the present invention will become clear from the description hereinafter.
According to the present invention there is provided a heat mode imaging element comprising in the order given:
  • i) a lithographic base having a hydrophilic surface,
  • ii) a layer comprising a metal and/or a metallic derivative capable of being ablated by actinic radiation and
  • iii) a oleophilic layer
  • characterized in that the oleophilic layer is a cross-linked layer.
    According to the present invention there is also provided a method for obtaining a lithographic printing plate comprising the steps of:
  • i) image-wise or information-wise exposing to actinic radiation an imaging element as described above thereby causing heating of said heat mode imaging element at the exposed areas and
  • ii) rubbing with or without a liquid said exposed imaging element to remove said layer comprising a metal and/or a metallic derivative and said oleophilic layer in said exposed areas.
  • 4. Detailed description of the invention.
    It has been found that lithographic printing plates of high quality can be obtained according to the method of the present invention using an imaging element as described above. More precisely it has been found that the exposure of the heat mode imaging element does not cause debris during said step or the debris that is formed during said exposure does not become free in the atmosphere. The debris which may be formed upon exposure remains on the plate and nevertheles can be easily removed afterwards.
    A cross-linked layer is a layer which is not soluble in a liquid without destroying the structure of at least one of the components comprised in said cross-linked layer.
    Cross-linking of a layer can be effected by an addition or a condensation reaction. Said cross-linked layer is obtainable by curing a composition comprising monomers and/or polymers having at least two reactive groups and/or a multifunctional compound whereof the functions can react with said reactive group of said monomer and/or polymer;
    The cross-linked oleophilic layer can be obtained by e.g. thermal or radiation curing.
    Thermal curing can be performed by using monomers and/or polymers having at least two chemical reactive groups and/or a multifunctional compound whereof the functions can react with said reactive group of said polymer. Examples of polymers having reactive groups are polyesters comprising hydroxy groups or carboxyl groups, polyamides comprising amino groups or carboxyl groups, polymers and copolymers of vinylphenol, polymers and copolymers of vinylalcohol etc.. Examples of monomers having reactive groups and/or of multifunctional compounds are di- or polyisocyanates, di-or poly epoxides, di- or polycarboxylic acids and derivatives thereof, di- or poly alcohols or phenols, di- or poly amines etc.
    Thermal curing can also be performed by using monomers which will cross-link with each other under the influence of heat e.g. polyols such as ditrimethylolpropane.
    Preferably said thermal curing is effected with compounds which can react under the influence of a reagent obtained by decomposition of a heat sensitive compound. In one embodiment of the present invention said reactive compounds are curable by reaction with a free radical e.g. monomers or monomer mixtures, having at least one polymerizable ethylenically unsaturated groups, at least one monomer having at least two polymerizable ethylenically unsaturated groups. A monomer of said monomer mixtures can be a monomer having only one polymerizable ethylenically unsaturated group but preferably only monomers containing at least two polymerizable ethylenically unsaturated groups are used. Particularly preferred are urethane type monomers, such as those disclosed in EP-A 502562 and 653684 and unsaturated esters of polyols, especially esters of polyols and an alpha-methylene carboxylic acid.
    Examples of esters of a polyol and an alpha-methylene carboxylic acid are: ethylene diacrylate, glycerol tri(meth)acrylate, ethylene dimethacrylate, 1,3-propanediol di(meth)acrylate, 1,2,4-butanetriol tri(meth)acrylate, 1,4-cyclohexanediol di(meth)acrylate, 1,4-benzenediol di(meth)acrylate, pentaerythritol tetra(meth)acrylate, dipentaerythritol pentaacrylate, 1,5-pentanediol di(meth)acrylate, the bis acrylates and methacrylates of polyethylene glycols of molecular weight 200-500, and the like.
    Other types of monomers suitable for use in the oleophilic photopolymerizable composition in accordance with the present invention are e.g. the monomers disclosed in EP-A 502562, DE-OS no. 4,109,239, 4,005,231, 3,643,216, 3,625,203, 3,516,257, 3,516,256 and 3,632,657, which therefor are incorporated herein by reference. Further types of monomers suitable for use in the oleophilic photopolymerizable composition in accordance with the present invention are disclosed in EP-A 522,616. It will be clear that these monomers can be used in admixture.
    Instead of or in combination with a monomer with at least one polymerizable ethylenically unsaturated group a prepolymer with at least one polymerizable ethylenically unsaturated group, preferably with two or more polymerizable ethylenically unsaturated groups can be used . Preferably, said prepolymer has a numerical average molecular weight of not more than 25,000, more preferably of not more than 10,000. At least the monomer or the prepolymer has at least two polymerizable ethylenically unsaturated groups.
    In another embodiment of the present invention said reactive compound or mixture of reactive compounds is curable by reaction with an acid. The acid-sensitive compound can be a monomer capable of undergoing cationic polymerization which is well known to one skilled in the art. Alternatively said mixture of compounds comprises a compound with at least two hydroxy groups and a reagent which is capable of crosslinking under the influence of an acid said compound with at least two hydroxy groups. In another alternative said mixture of compounds comprises a compound comprising at least two latent or masked electrophilic groups that are transformed into electrophilic groups upon reaction with acid and a compound containing an aromatic moiety that is susceptible to electrophilic aromatic substitution.
    Monomers capable of undergoing cationic polymerization are preferably compounds comprising at least one vinylether, propenylether or epoxy function. At least a part of said monomers comprises at least two of said functions. More preferably all of said compounds comprise at least two of said functions. Most preferably polyfunctional epoxy compounds are used based e.g. on the reaction product of Bisphenol A, that is 2,2-bis (4-hydroxyphenyl) propane and epichlorohydrin, for example the resins sold under the registered trademark DER by Dow Chemicals.
    Compounds comprising at least two hydroxy groups can be low molecular compounds but may also be polymers. Reagents which are capable of crosslinking under the influence of an acid said compounds with at least two hydroxy groups are e.g. compounds comprising at least two isocyanate groups, for example the compounds sold under the registered trade name DESMODUR by Bayer, tetraalkoxymethyl glycolurils, for example the compound sold under the registered trade name CYMEL 1170 by Dyno Cyanamid and compounds represented by the following formula
    Figure 00060001
    wherein Z represents -NRR' or a phenyl group, R, R' and R1 to R4 each independently represents a hydrogen atom, CH2OH or CH2OR5 in which R5 represents an alkyl group. At least part of said compounds comprising at least two hydroxy groups or of said compounds which are capable of cross-linking under the influence of an acid said compounds with at least two hydroxy groups contains at least three functional groups.
    Compounds comprising at least two latent or masked electrophilic groups may be aliphatic compounds comprising at least two hydroxy functions or compounds comprising an aromatic ring substituted with at least two latent or masked electrophilic groups or compounds comprising at least two aromatic rings comprising at least one latent or masked electrophilic group. The latent or masked electrophilic group is preferably -CH2OR6, wherein R6 represents a hydrogen atom or an acyl rest. Also preferably said aromatic rings are substituted phenols.
    Compounds containing an aromatic moiety that are susceptible to electrophilic aromatic substitution may be low molecular weight compounds but are preferably polymers, more preferably polymers containing a phenolic moiety, most preferably polyvinyl 4-hydroxy-styreen or novolac resins. At least part of said compounds comprising at least two latent or masked electrophilic groups contains at least three latent or masked electrophilic groups and/or the compounds containing an aromatic moiety that are susceptible to electrophilic aromatic substitution are susceptible to a three-fold electrophilic aromatic substitution.
    In still another embodiment of the present invention said reactive compound or mixture of reactive compounds can be cured by reaction with an alkali. Compounds which can undergo curing under the influence of alkali are e.g. polyfunctional epoxy compounds. More preferably polyfunctional epoxy compounds are used based on the reaction product of Bisphenol A, that is 2,2-bis (4-hydroxyphenyl) propane and epichlorohydrin, for example the resins sold under the registered trademark DER by Dow Chemicals.
    As compounds which can decompose by heat to yield radicals mostly azo and peroxide compounds are used e.g. 2,2' -azobisisobutyronitrile and benzoylperoxide. Said compounds are preferably used in an amount ranging from 0.001 to 1 g/m2, more preferably in an amount ranging from 0.01 to 0.25 g/m2.
    Acid precursors which can decompose under the influence of heat for use in connection with the present invention include onium salts, in particular iodonium, sulfonium, phosphonium, selenonium, diazonium and arsonium salts.
    Specific examples of particularly useful onium salts include :
  • diphenyliodonium hexafluorophosphate,
  • triphenylsulfonium hexafluoroantimonate,
  • phenylmethyl-ortho-cyanobenzylsulfonium trifluoromethane sulfonate, and
  • 2-methoxy-4-aminophenyl diazonium hexafluorophosphate
  • Other acid precursors which can decompose under the influence of heat for use in connection with the present invention include inorganic nitrates such as e.g. Mg(NO3)2.6H2O or organic nitrates such as guanidinium nitrate, ammonium nitrate, pyridinium nitrate etc... as disclosed in EP 462763, WO 81/1755, US 4.370.401, compounds that release a sulfonic acid such as 3-sulfolenes, e.g. 2,5-dihydrothio-thiophene-1,1-dioxides as disclosed in US 5.312.721, thermolytic compounds disclosed in GB 1.204.495, co-cristalline adducts of an amine and an volatile organic acid as disclosed in US 3.669.747, aralkylcyanoforms as disclosed in US 3.166.583, benzoinetosylaat, 2-nitrobenzyltosylaat and alkyl esters of organic sulfonic acids as described in EP 542008, thermo-acids disclosed in EP 159725 and DE 3515176, squaric acid generating compounds as disclosed in US 5.278.031, acid generating compounds disclosed in US 5.225.314 and US 5.227.277 and RD 11511 of November 1973.
    Said heat sensitive acid precursors are preferably used in an amount ranging from 0.01 to 1 g/m2.
    Heat sensitive alkali precursors comprises t.-butyloxycarbonyl masked amines and dicyandiamides as described by G. Eastmond et al. in Comprehensive Polymer Science, Vol 6, Pergamon Press.
    Said heat sensitive alkali precursors are preferably used in an amount ranging from 0.01 to 1 g/m2.
    Preferably the curing is performed by radiation curing. Radiation curing can be effected by using U.V. curable polymers and/or monomers containing epoxy groups. Radiation curing can also be effected with the compositions described above comprising compounds which can react under the influence of a reagent obtained by decomposition of a heat sensitive compound wherein the substance which yields said reagent is replaced by a substance which yields an identical or similar reagent by decomposition under the influence of radiation, preferably U.V. radiation. In many cases the substances yielding said reagent under the influence of heat is identical with the substance yielding said reagent under the influence of radiation.
    As compounds which can decompose by radiation to yield radicals mostly the above mentioned azo and peroxide compounds are used.
    In a preferred embodiment said cross-linked layer is formed by applying at least one ethylenically unsaturated monomer and a compound which can yield radicals by radiation on a layer comprising a metal and/or a metallic derivative capable of being ablated by actinic radiation and deposited under vacuum on a lithographic base having a hydrophilic support and performing the cross-linking by UV-radiation in the same passage through the same vacuum chamber.
    Acid precursors which can decompose under the influence of radiation for use in connection with the present invention include the above mentioned onium salts.
    Non-ionic acid precursors are also suitable for use in this invention. Examples of these include compounds of the formula :
       RCH2X, RCHX2, RCX3, R(CH2X)2 and R(CH2X)3
    wherein X is Cl, Br, F or CF3SO3 and R is an aromatic group or an aliphatic group.
    Further suitable non-ionic acid precursors are haloalkyl-substituted s-triazines as disclosed in EP-A 672954, o-quinone diazides, photo acid generating agents having an o-nitrobenzyl type protective group as described in Polymer Sci., by S. Hayase et al, 25, 573 (1987); the compounds which are subjected to a photodecomposition to generate a sulfonic acid, represented by iminosulfonates as described in Polymer Preprints Japan, by M. Tunooka et al, 35 (8), by disulfon compounds described in JP-Pi 61-166544, by α-sulphonyloxy ketones, by α-hydroxymethylbenzoine sulphonates, by nitrobenzyl sulphonates, by α-sulphonyl acetophenones and by sulphonyl imides, the preparation of these last compounds being well known in the literature; the compounds which are subjected to a photodecomposition to generate a phosphonic acid, a partly esterified phosphoric acid or phosphoric acid, represented by nitrobenzylphosphates or phosphonates as described in Tetrahedron Letters, by M. Rubinstein et al., 17, 1445 (1975), by benzoine phosphates or phosphonates, as described in J. Org. Chem. by M. Pirrung and S. Shuey, 59 , 3890 (1994), by pyrenemethylphosphates or phosphonates, by iminophosphates or phosphonates and by imidophosphates or phosphonates, the preparation of these last compounds being well known in the literature.
    Further, compounds in which the above photosensitive acid precursors are introduced into a primary chain or a side chain of a polymer can be used. Examples thereof include the compounds described in e.g. J.Am.Chem.Soc., by M.E. Woodhouse et al, 104, 5586 (1982); J.Imaging Sci., by S.P. Pappas et al, 30 (5), 218 (1986); etc..
    More preferably the curing is performed by using electron beam curing on curable polymers obtainable from (meth)acrylate groups.
    Most preferably said curing is performed by electron beam curing of (meth)acrylate monomers, particularly of polyfunctional (meth)acrylate monomers.
    In a preferred embodiment of the present invention said cross-linked layer is formed by the following steps:
    • applying at least one polyfunctional monomer under vacuum in a vacuum chamber on said layer comprising a metal and/or a metallic derivative capable of being ablated by actinic radiation and deposited under vacuum on a lithographic base having a hydrophilic support and
    • performing the cross-linking by electron beam curing in the same passage through the same vacuum chamber.
    The thickness of the oleophilic layer comprising a cross-linked polymer is preferably between 0.1 µm and 4 µm and more preferably between 0.1 µm and 1 µm.
    The amount of the reactive compound or mixture of reactive compounds ranges preferentially from 0.1 to 5.8 g/m2, more preferably from 0.5 to 3 g/m2
    The layer comprising a metal or a metal derivative in accordance with the present invention is preferably a vapour or vacuum deposited layer. Suitable metals are e.g. aluminum, bismuth, tin, titanium, indium, tellurium etc.. Preferably bismuth is used. Also metal derivatives can be used such as metal oxides, metal suboxides, metal carbides, metal nitrides etc.. Preferably the thickness of the layer comprising a metal or a metal derivative is not more than 3 µm and most preferably not more than 1 µm. In case a vapour or vacuum deposited metal layer is used as a recording layer the thickness thereof is preferably such that the optical density is between 0.3 and 5 and more preferably between 1 and 4.
    The coating of the hydrophilic surface of the lithographic base with the layer containing a metal and/or a metallic derivative and with an electron beam cured layer is preferably executed as an in-line production.
    In a preferred embodiment of the present invention the coating of the hydrophilic surface of the lithographic base with the layer containing a metal and/or a metallic derivative and with an UV-radiation or electron beam curable layer and the curing of said last layer is preferably executed consecutively in the same vacuum passage.
    According to one embodiment of the present invention, the lithographic base can be anodised aluminum. A particularly preferred lithographic base is an electrochemically grained and anodised aluminum support. According to the present invention, an anodised aluminum support may be treated to improve the hydrophilic properties of its surface. For example, the aluminum support may be silicated by treating its surface with sodium silicate solution at elevated temperature, e.g. 95°C. Alternatively, a phosphate treatment may be applied which involves treating the aluminum oxide surface with a phosphate solution that may further contain an inorganic fluoride. Further, the aluminum oxide surface may be rinsed with a citric acid or citrate solution. This treatment may be carried out at room temperature or can be carried out at a slightly elevated temperature of about 30 to 50°C. Still further the aluminum oxide surface may be treated with polyvinyl phosphonic acid. A further interesting treatment involves rinsing the aluminum oxide surface with a bicarbonate solution. It is further evident that one or more of these post treatments may be carried out alone or in combination.
    According to another embodiment in connection with the present invention, the lithographic base comprises a glass support or a flexible support, such as e.g. paper or plastic film, provided with a cross-linked hydrophilic layer. A particularly suitable cross-linked hydrophilic layer may be obtained from a hydrophilic binder cross-linked with a cross-linking agent such as formaldehyde, glyoxal, polyisocyanate or a hydrolysed tetra-alkylorthosilicate. The latter is particularly preferred.
    As hydrophilic binder there may be used hydrophilic (co)polymers such as for example, homopolymers and copolymers of vinyl alcohol, acrylamide, methylol acrylamide, methylol methacrylamide, acrylic acid, methacrylic acid, hydroxyethyl acrylate, hydroxyethyl methacrylate or maleic anhydride/vinylmethylether copolymers. The hydrophilicity of the (co)polymer or (co)polymer mixture used is preferably the same as or higher than the hydrophilicity of polyvinyl acetate hydrolyzed to at least an extent of 60 percent by weight, preferably 80 percent by weight.
    The amount of crosslinking agent, in particular of tetraalkyl orthosilicate, is preferably at least 0.2 parts by weight per part by weight of hydrophilic binder, preferably between 0.5 and 5 parts by weight, more preferably between 1.0 parts by weight and 3 parts by weight.
    A cross-linked hydrophilic layer in a lithographic base used in accordance with the present embodiment preferably also contains substances that increase the mechanical strength and the porosity of the layer. For this purpose colloidal silica may be used. The colloidal silica employed may be in the form of any commercially available water-dispersion of colloidal silica for example having an average particle size up to 40 nm, e.g. 20 nm. In addition inert particles of larger size than the colloidal silica can be added e.g. silica prepared according to Stöber as described in J. Colloid and Interface Sci., Vol. 26, 1968, pages 62 to 69 or alumina particles or particles having an average diameter of at least 100 nm which are particles of titanium dioxide or other heavy metal oxides. By incorporating these particles the surface of the cross-linked hydrophilic layer is given a uniform rough texture consisting of microscopic hills and valleys, which serve as storage places for water in background areas.
    The thickness of a cross-linked hydrophilic layer in a lithographic base in accordance with this embodiment may vary in the range from 0.2 to 25 µm and is preferably 1 to 10 µm.
    Particular examples of suitable cross-linked hydrophilic layers for use in accordance with the present invention are disclosed in EP-A 601240, GB-P-1419512, FR-P-2300354, US-P-3971660, US-P-4284705 and EP-A 514490.
    As glass support of a lithographic base in connection with the present embodimen glass can be used having a thickness of not more than 0.5 mm, a failure stress of at least 107 Pa and a Youngs modulus of not more than 1011 Pa
    As flexible support of a lithographic base in connection with the present embodiment it is particularly preferred to use a plastic film e.g. substrated polyethylene terephthalate film, cellulose acetate film, polystyrene film, polycarbonate film etc... The plastic film support may be opaque or transparent. When the support is transparent, the exposure can take place through the support.
    The heat mode imaging element used in accordance with the invention may contain additional layers such as e.g. one or more layers between the lithographic base and the layer comprising a metal and/or a metallic derivative for improving the adhesion of the layer comprising a metal and/or a metallic derivative to the lithographic base or intermediate layers between the oleophilic layer and the layer comprising a metal and/or a metallic derivative. The shelf life of the imaging element may be influenced by the composition of the intermediate layers.
    The heat mode imaging element in connection with the present invention is preferably exposed using a laser. Preferably used lasers are e.g. semiconductor lasers, YAG lasers e.g. Nd-YAG lasers, Argon lasers etc.. The laser may have a power output between 40 and 7500mW and preferably operates in the infrared part of the spectrum. Rubbing of the image-wise exposed heat mode recording material can be done using a brush, a cotton pad etc.. Rubbing of the heat mode recording material in connection with the present invention can be carried out without the presence of a liquid. In this way images of good contrast and high density can be obtained. Rubbing may however also be carried out in the presence of a liquid for a better cleaning of the exposed areas without any detrimental effect on the image quality. More preferably, the liquid is a non-swelling agent for the cross-linked oleophilic layer.
    The present invention will now be illustrated by the following example without however limiting it thereto. All parts are by weight unless otherwise specified.
    EXAMPLE 1 Preparation of the lithographic base
    To 440 g of a dispersion containing 21.5 % of TiO2 (average particle size 0.3 to 0.4 µm) and 2.5% of polyvinyl alcohol in deionized water were subsequently added, while stirring, 250 g of a 5 % of polyvinyl alcohol solution in water, 105 g of a hydrolyzed 22 % tetramethylorthosilicate emulsion in water and 12 g of a 10 % solution of a wetting agent.
    To this mixture was added 193 g of deionized water and the pH was adjusted to pH = 4.
    The obtained dispersion was coated on a polyethyleneterephthalate film support (coated with a hydrophilic adhesion layer) to a wet coating thickness of 50 g/m2, dried at 30 °C, and subsequently hardened by subjecting it to a temperature of 57 °C for 1 week.
    Deposition of the metallic film
    A cylindrical vacuum chamber contained an electrically heated refractory tray in which bismuth was present as metal vapour source. Under high vacuum (i.e. at a pressure of about 10-2 Pa) the obtained metal vapour was directed towards the hydrophilic surface of the lithographic base and was deposited thereon at a thickness of 0.2 µm.
    Coating and curing of the oleophilic layer
    A mixture of 3 parts of Ebecryl 264 (trade name of UCB for an aliphatic urethanetriacrylate), 5 parts of Ebecryl 1290 (trade name of UCB for an aliphatic urethanehexaacrylate) and 2 parts of 1,6-hexanedialdiacrylate was coated on said metallic layer in a thickness of 1, 2 and 4 µm. Said coated materials were subjected to electron beam curing with a voltage of 150 kV and a dose of 4 Mrad.
    Preparation of a printing plate and making copies of the original
    Imaging elements as described above were subjected to a scanning NdYAG infrared laser (scanspeed 100 m/s, spot size 15 µm, 3600 dpi and the power on the plate surface was varied from 2.0 to 6.0 W). Atfer imaging the plates were rubbed with a cotton pad and afterwards rinsed with water to remove at the exposed areas the oleophilic layer and the metallic layer resulting in positive working lithographic printing plates.
    The obtained lithographic printing plates could be used to print on a conventional offset press such as a Rotamatic R35 using a commonly employed ink such as AB Dick 10/20 and fountain. Excellent copies were obtained.

    Claims (11)

    1. A heat mode imaging element comprising in the order given:
      i) a lithographic base having a hydrophilic surface,
      ii) a layer comprising a metal and/or a metallic derivative capable of being ablated by actinic radiation and
      iii) a oleophilic layer
      characterized in that the oleophilic layer is a cross-linked layer.
    2. A heat mode imaging element according to claim 1 wherein said cross-linked layer is obtainable by curing a composition comprising monomers and/or polymers having at least two reactive groups and/or a multifunctional compound whereof the functions can react with said reactive group of said monomer and/or polymer.
    3. A heat mode imaging element according to claim 1 or 2 wherein said cross-linked layer is obtainable by curing compounds which can react under the influence of a reagent obtained by decomposition of a heat sensitive compound.
    4. A heat mode imaging element according to claim 1 or 2 wherein said cross-linked layer is obtainable by radiation curing of radiation curable polymers and/or monomers.
    5. A heat mode imaging element according to claim 4 wherein said curing is electron beam curing.
    6. A heat mode imaging element according to claim 5 wherein said cross-linked layer is obtainable by electron beam curing of a polymer obtainable from (meth)acrylate groups.
    7. A heat mode imaging element according to claim 5 wherein said cross-linked layer is obtainable by electron beam curing of polyfunctional (meth) acrylate monomers.
    8. A heat mode imaging element according to claim 5 wherein said cross-linked layer is obtainable by electron beam curing of a mixture comprising a polymer and polyfunctional polymerisable ethylenically unsaturated monomers.
    9. A heat mode imaging element according to any of claims 1 to 8 wherein said layer comprising a metal or a metallic derivative comprises aluminum, bismuth, tin, titanium, indium or tellurium.
    10. A method for obtaining a heat mode imaging element according to any of claims 4 to 8 comprising the following steps:
      applying by vacuum in a vacuum chamber a layer comprising a metal and/or a metallic derivative capable of being ablated by actinic light on a lithographic base having a hydrophilic surface and
      depositing on said layer comprising a metal and/or a metallic derivative a layer comprising at least a polymerisable ethylenically unsaturated monomer which is cured by UV-radiation or electron beam irradiation in the same vacuum passage.
    11. A method for obtaining a lithographic printing plate comprising the steps of:
      i) image-wise or information-wise exposing to actinic radiation an imaging element according to any of claims 1 to 9 thereby causing heating of said heat mode imaging element at the exposed areas and
      ii) rubbing with or without a liquid said exposed imaging element to remove said layer comprising a metal or a metallic derivative and said oleophilic layer in said exposed areas.
    EP19970201962 1996-07-04 1997-06-26 A heat sensitive imaging element and a method for producing lithographic plates therewith Expired - Lifetime EP0816071B1 (en)

    Priority Applications (1)

    Application Number Priority Date Filing Date Title
    EP19970201962 EP0816071B1 (en) 1996-07-04 1997-06-26 A heat sensitive imaging element and a method for producing lithographic plates therewith

    Applications Claiming Priority (3)

    Application Number Priority Date Filing Date Title
    EP96201907 1996-07-04
    EP96201907 1996-07-04
    EP19970201962 EP0816071B1 (en) 1996-07-04 1997-06-26 A heat sensitive imaging element and a method for producing lithographic plates therewith

    Publications (2)

    Publication Number Publication Date
    EP0816071A1 EP0816071A1 (en) 1998-01-07
    EP0816071B1 true EP0816071B1 (en) 2000-10-04

    Family

    ID=26142977

    Family Applications (1)

    Application Number Title Priority Date Filing Date
    EP19970201962 Expired - Lifetime EP0816071B1 (en) 1996-07-04 1997-06-26 A heat sensitive imaging element and a method for producing lithographic plates therewith

    Country Status (1)

    Country Link
    EP (1) EP0816071B1 (en)

    Families Citing this family (9)

    * Cited by examiner, † Cited by third party
    Publication number Priority date Publication date Assignee Title
    GB9711383D0 (en) * 1997-06-03 1997-07-30 Du Pont Uk Heat sensitive printing plateprecursors
    GB9711387D0 (en) * 1997-06-03 1997-07-30 Du Pont Uk Heat sensitive printing plate precursors
    GB9711391D0 (en) * 1997-06-03 1997-07-30 Du Pont Uk Heat sensitive printing plate precursors
    GB9711381D0 (en) * 1997-06-03 1997-07-30 Du Pont Uk Heat sensitive printing plate precursors
    EP0934824A1 (en) * 1998-02-09 1999-08-11 Agfa-Gevaert N.V. Heat-sensitive imaging material and method for making on-press lithographic plates requiring no separate processing
    US6068965A (en) * 1998-02-09 2000-05-30 Agfa-Gevaert, N.V. Heat-sensitive imaging material and method for making on-press lithographic printing plates requiring no separate processing
    US6132934A (en) * 1998-02-09 2000-10-17 Agfa-Gevaert, N.V. Heat-sensitive imaging material for making lithographic printing plates requiring no processing
    EP0934823B1 (en) * 1998-02-09 2003-04-02 Agfa-Gevaert Heat-sensitive imaging material for making lithographic printing plates requiring no processing
    JP4026763B2 (en) * 2003-02-04 2007-12-26 コダックグラフィックコミュニケーションズ株式会社 Planographic printing plate precursor and plate making method

    Family Cites Families (6)

    * Cited by examiner, † Cited by third party
    Publication number Priority date Publication date Assignee Title
    US5188032A (en) * 1988-08-19 1993-02-23 Presstek, Inc. Metal-based lithographic plate constructions and methods of making same
    US5212048A (en) * 1990-11-21 1993-05-18 Presstek, Inc. Silicone coating formulations and planographic printing plates made therewith
    EP0573092A1 (en) * 1992-06-05 1993-12-08 Agfa-Gevaert N.V. A method for obtaining an image using a heat mode recording material
    EP0573091B1 (en) * 1992-06-05 1996-03-20 Agfa-Gevaert N.V. A heat mode recording material and method for producing driographic printing plates
    GB9214304D0 (en) * 1992-07-06 1992-08-19 Du Pont Uk Improvements in or relating to image formation
    US5353705A (en) * 1992-07-20 1994-10-11 Presstek, Inc. Lithographic printing members having secondary ablation layers for use with laser-discharge imaging apparatus

    Also Published As

    Publication number Publication date
    EP0816071A1 (en) 1998-01-07

    Similar Documents

    Publication Publication Date Title
    US5908731A (en) Heat sensitive imaging element and a method for producing lithographic plates therewith
    AU725426B2 (en) Method of lithographic imaging with reduced debris-generated performance degradation and related constructions
    US7005234B2 (en) Planographic printing plate precursor and planographic printing method
    EP0819980B1 (en) An IR radiation-sensitive imaging element and a method for producing lithographic plates therewith
    US5658708A (en) Image recording material
    US6514656B1 (en) Positive type image forming material
    US20050158663A1 (en) Regenerative plate making and printing process, and plate making and printing apparatus
    EP0819985B1 (en) A radiation sensitive imaging element and a method for producing lithographic plates therewith
    JP2004512192A (en) On-press development of heat-sensitive lithographic printing plates
    EP0769372A1 (en) Method of lithographic printing
    US7608388B2 (en) Inkjet-imageable lithographic printing members and methods of preparing and imaging them
    US6033740A (en) Method for making positive working printing plates from a lithographic base comprising a flexible support having a hardened hydrophilic substrate
    WO2004114019A1 (en) Negative photosensitive composition and negative photosensitive lithographic printing plate
    EP0816071B1 (en) A heat sensitive imaging element and a method for producing lithographic plates therewith
    JP2003262958A (en) Image recording material
    US6489078B1 (en) IR radiation-sensitive imaging element and a method for producing lithographic plates therewith
    US5994023A (en) Acid-sensitive substance and photosensitive compositions therewith
    US6887642B2 (en) Multi-layer negative working imageable element
    US6723495B2 (en) Water-developable negative-working ultraviolet and infrared imageable element
    US6140022A (en) Radiation sensitive imaging element and a method for producing lithographic plates therewith
    JP3449818B2 (en) Image recording material
    EP0819986B1 (en) Imaging element for making lithographic printing plates
    US20080286694A1 (en) Method to obtain a positive-working thermal lithographic printing master
    EP0862998B1 (en) A heat sensitive imaging element and a method for producing lithographic plates therewith
    EP0924064A1 (en) A method for making positive working printing plates from a lithographic base comprising a flexible support having a hardened hydrophilic substrate

    Legal Events

    Date Code Title Description
    PUAI Public reference made under article 153(3) epc to a published international application that has entered the european phase

    Free format text: ORIGINAL CODE: 0009012

    AK Designated contracting states

    Kind code of ref document: A1

    Designated state(s): AT BE CH DE

    Kind code of ref document: A1

    Designated state(s): BE DE FR GB

    17P Request for examination filed

    Effective date: 19980707

    AKX Designation fees paid

    Free format text: BE DE FR GB

    RBV Designated contracting states (corrected)

    Designated state(s): BE DE FR GB

    GRAG Despatch of communication of intention to grant

    Free format text: ORIGINAL CODE: EPIDOS AGRA

    GRAG Despatch of communication of intention to grant

    Free format text: ORIGINAL CODE: EPIDOS AGRA

    GRAH Despatch of communication of intention to grant a patent

    Free format text: ORIGINAL CODE: EPIDOS IGRA

    17Q First examination report despatched

    Effective date: 19991021

    GRAH Despatch of communication of intention to grant a patent

    Free format text: ORIGINAL CODE: EPIDOS IGRA

    GRAA (expected) grant

    Free format text: ORIGINAL CODE: 0009210

    AK Designated contracting states

    Kind code of ref document: B1

    Designated state(s): BE DE FR GB

    PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

    Ref country code: BE

    Free format text: LAPSE BECAUSE OF FAILURE TO SUBMIT A TRANSLATION OF THE DESCRIPTION OR TO PAY THE FEE WITHIN THE PRESCRIBED TIME-LIMIT

    Effective date: 20001004

    REF Corresponds to:

    Ref document number: 69703224

    Country of ref document: DE

    Date of ref document: 20001109

    ET Fr: translation filed
    PLBE No opposition filed within time limit

    Free format text: ORIGINAL CODE: 0009261

    STAA Information on the status of an ep patent application or granted ep patent

    Free format text: STATUS: NO OPPOSITION FILED WITHIN TIME LIMIT

    26N No opposition filed
    REG Reference to a national code

    Ref country code: GB

    Ref legal event code: IF02

    REG Reference to a national code

    Ref country code: GB

    Ref legal event code: 732E

    REG Reference to a national code

    Ref country code: FR

    Ref legal event code: TP

    PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

    Ref country code: FR

    Payment date: 20090420

    Year of fee payment: 13

    PGFP Annual fee paid to national office [announced via postgrant information from national office to epo]

    Ref country code: GB

    Payment date: 20090421

    Year of fee payment: 13

    Ref country code: DE

    Payment date: 20090421

    Year of fee payment: 13

    GBPC Gb: european patent ceased through non-payment of renewal fee

    Effective date: 20100626

    REG Reference to a national code

    Ref country code: FR

    Ref legal event code: ST

    Effective date: 20110228

    PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

    Ref country code: DE

    Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

    Effective date: 20110101

    PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

    Ref country code: FR

    Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

    Effective date: 20100630

    PG25 Lapsed in a contracting state [announced via postgrant information from national office to epo]

    Ref country code: GB

    Free format text: LAPSE BECAUSE OF NON-PAYMENT OF DUE FEES

    Effective date: 20100626