EP0344329A1 - Thermal head and production thereof - Google Patents

Thermal head and production thereof Download PDF

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Publication number
EP0344329A1
EP0344329A1 EP89900304A EP89900304A EP0344329A1 EP 0344329 A1 EP0344329 A1 EP 0344329A1 EP 89900304 A EP89900304 A EP 89900304A EP 89900304 A EP89900304 A EP 89900304A EP 0344329 A1 EP0344329 A1 EP 0344329A1
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EP
European Patent Office
Prior art keywords
resistor
thermal head
electrodes
matrix
glass
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.)
Withdrawn
Application number
EP89900304A
Other languages
German (de)
French (fr)
Other versions
EP0344329A4 (en
Inventor
Akihiko Yoshida
Atsushi Nishino
Nobuyuki Yoshiike
Yoshihiro Watanabe
Yasuhiro Takeuchi
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.)
Panasonic Holdings Corp
Original Assignee
Matsushita Electric Industrial Co Ltd
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
Priority claimed from JP62312744A external-priority patent/JPH0745250B2/en
Priority claimed from JP63161667A external-priority patent/JPH0755564B2/en
Priority claimed from JP63184354A external-priority patent/JP2548314B2/en
Priority claimed from JP63184356A external-priority patent/JPH088162B2/en
Application filed by Matsushita Electric Industrial Co Ltd filed Critical Matsushita Electric Industrial Co Ltd
Publication of EP0344329A1 publication Critical patent/EP0344329A1/en
Publication of EP0344329A4 publication Critical patent/EP0344329A4/en
Withdrawn legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/315Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/315Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material
    • B41J2/32Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material using thermal heads
    • B41J2/335Structure of thermal heads
    • B41J2/33505Constructional details
    • B41J2/33515Heater layers
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/315Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material
    • B41J2/32Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material using thermal heads
    • B41J2/335Structure of thermal heads
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/315Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material
    • B41J2/32Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material using thermal heads
    • B41J2/335Structure of thermal heads
    • B41J2/3355Structure of thermal heads characterised by materials
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/315Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material
    • B41J2/32Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material using thermal heads
    • B41J2/335Structure of thermal heads
    • B41J2/33555Structure of thermal heads characterised by type
    • B41J2/3357Surface type resistors
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B41PRINTING; LINING MACHINES; TYPEWRITERS; STAMPS
    • B41JTYPEWRITERS; SELECTIVE PRINTING MECHANISMS, i.e. MECHANISMS PRINTING OTHERWISE THAN FROM A FORME; CORRECTION OF TYPOGRAPHICAL ERRORS
    • B41J2/00Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed
    • B41J2/315Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material
    • B41J2/32Typewriters or selective printing mechanisms characterised by the printing or marking process for which they are designed characterised by selective application of heat to a heat sensitive printing or impression-transfer material using thermal heads
    • B41J2/335Structure of thermal heads
    • B41J2/3359Manufacturing processes

Definitions

  • the present invention relates to a thermal head for use in recording apparatuses such as facsimile, full color printer, word processor and so on, and more particularly, to improvements in a resistor layer which is one of major components of the thermal head, and the manufacturing method thereof.
  • the thermal head is mainly composed of at least a pair of electrodes, resistor layers in contact with both the electrodes, base plates for supporting the electrodes and the resistor layers on the surfaces thereof, with at least the surfaces thereof being of insulating property, and abrasion-resistant layers formed on the resistor layers.
  • a thin film type and a thick film type depending upon how to manufacture it.
  • the thin film type is formed by the sputtering, evaporation, etc. of an electrode, a resistor layer, an abrasion-resistant layer in vacuum.
  • the thick film type obtains gold electrodes, a resistor layer composed of a glass layer, Ru0 2 being scattered therein, and an abrasion-resistant layer composed of glass, by the respective printing, heating operations of, for example, paste of a decomposable organic compound of the gold, paste containing R U 0 2 and glass frit, and paste of borosilicate glass frit, so that the thick film type may provide a thermal head of higher reliability, lower cost than the thin film type.
  • the thermal head heats the specified region of the resistor layer in contact with both the electrodes through the current flowing between a pair of electrodes so as to heat the specified region of the recording member, for example, a heat sensitive recording paper for giving one dot portion of recording.
  • the important characteristics to be demanded for the thermal head are that the heating of the resistor layer is efficiently transmitted onto the side of the recording paper, and the heating of the resistor layer between the individual electrode pair disposed normally in a line shape is uniform.
  • the concentration of the individual recording dots to be recorded on the recording paper become unequal, thus causing the lines of variable density on the recording to make the recording quality worse.
  • the characteristics are emphasized especially as the thermal head for full color printer use which demands the gradation record.
  • a cause for such uneven record concentration is considered to be the dispersion of the resistance values of the individual resistor dots.
  • a trimming step in the thick film method, is adopted. This step applies the overload pulses on the individual dots of the resistor layer, thus making it possible to have the resistance value within ⁇ 0.5 % of the target.
  • the resistance value of the individual resistor dot may be provided within f 2.5 % by the controlling operation of the conditions of the evaporation and sputtering for obtaining the resistor.
  • the resistor layer of the thermal head of the present thick film type is formed by the screen-printing, heating of the paste composed of the resistor component Ru0 2 , glass frit, organic binder. But, as the paste is a mixture between RuO 2 powder and glass powder, the resistor layer to be produced by the paste is also a mixture of them.
  • the heating is to be concentrated in one portion of one dot in the actual recording even when the dot resistance value has reached the target value, so that the normal dot shape is not obtained.
  • the deviation of the current pass in such one resistor dot is due to unequal distribution of the conductive element like the Ru0 2 in one resistor dot.
  • an essential object of the present invention is to provide a thermal head which is free from such conventional inconveniences as described hereinabove, and has a resistor layer uniform in the resistance value so as to give recordings superior in quality.
  • Another important object of the present invention is to provide a method of obtaining a thermal head which gives recordings superior in quality.
  • the thermal head of the present invention has the resistor layer composed of the matrix of the glass, and metal and/or oxide of resistor component element existed in the,gap of the atomic bond of the matrix. It is to be noted that the thermal head usually has an abrasion-resistant layer covering the resistor layer.
  • a preferable method of obtaining the resistor layer of the thermal head comprises a step of forming by a printing, a spin coat, a painting method and so on the film of the paste containing the thermally decomposable organic compound of the resistor component element, and the thermally decomposable organic compound of the element for forming the matrix of the glass, and a step of producing a resistor layer composed of the glass matrix, the metal and/or oxide of the resistor component element dispersed in the matrix through the thermally decomposition of the organic compound in the paste by the heating processing.
  • the paste is preferable to be composed of the-organic compounds, and a solvent for dissolving these organic compounds, an organic binder to be dissolved in the solvent.
  • the organic compound of the resistor component element is mixed in a molecular level with the organic compound of the element for forming the matrix of the glass, the oxide of the element for forming the matrix of the glass the metal and/or oxide of the resistor component element are formed through the pyrolytic decomposition of them, and the metal and/or the oxide of the latter is taken into the matrix of the glass to be caused by the fusion of the above-described oxide so as to form the resistor layer.
  • the metal and/or the oxide of the resistor component element is in a condition, where it is put into the gap of the atomic bond of the matrix of the glass in the atomic or molecular level. Accordingly, the resistor layer becomes extremely uniform in the composition, and the amount of the resistor component element becomes less than it was conventionally.
  • Fig. 1 shows the relationship between the ruthenium element containing percentage of the resistor layer composed of the glass matrix and mainly the oxide of the ruthenium dispersed in the matrix thereof, and the dispersion of the resistance value of the resistor layer. It is to be noted that the axis of ordinate related to the resistance value shows the value of ⁇ /R X 100. R is an average value of the resistance value, a is a standard deviation value.
  • A is the characteristics of the resistor layer obtained by the method of the present invention
  • B shows the characteristics of the resistor layer by the conventional method.
  • the granular diameter of the oxide of ruthenium is 1 or lower pm
  • the granular diameter thereof is 5 or higher pm.
  • the paste containing the thermally decomposable organic compound of the resistor component element, and the glass frit instead of the paste. Even in this case, it is better for the paste to contain the solvent to dissolve the organic compound, and the organic binder to be dissolved in the solvent.
  • the dispersion property of the metal and/or oxide of the resistor component element in the producing resistor layer is inferior to that of the above-described method, but is extremely superior to that of the conventional method.
  • the organic compound is in contact against the particles of the glass frit in the condition of the liquid in the paste, the metal and/or the oxide to be produced by the pyrolytic decomposition is dispersed in the molecular level onto the glass frit granular surface, so that they are taken into the glass matrix to be formed through the fusion of the glass frit in this condition.
  • ruthenium is preferable among them, although there are ruthenium, gold, silver, nickel, chromium, tantalum or the like as the resistor component element to be applied to the present invention.
  • the ruthenium exists mainly as an oxide in the resistor layer.
  • the resistor layer using the ruthenium is extremely large in the temperature dependence property of the resistance value as shown in Fig. 2a.
  • the temperature dependence property of the resistance value is improved as shown in Fig. 2b.
  • the rhodium the film forming property of the resistor layer is also improved.
  • the weight ratio is proper to be 0 ⁇ Rh / Ru ⁇ 5.
  • the element for forming the matrix of the glass there are provided boron, silicon for constituting glass borosilicate, and furthermore, lead for constituting glass lead borosilicate, lanthanum for constituting lanthanum series glass, and besides, bismuth and so on.
  • zirconium, titanium, vanadium, aluminum, tantalum, zinc and so on may be added.
  • thermally decomposable organic compound of the above-described element there are alcohlate such as ethyl alcoxide, isopropoxide or the like, fatty acid ester to be represented by hexane acid ester, polycyclic organic compound such as menthol alcohlate, ester or the like, rosin compound such as abietic acid salt or the like, siloxanes, boric acid organic compound and so on.
  • alcohlate such as ethyl alcoxide, isopropoxide or the like
  • fatty acid ester to be represented by hexane acid ester polycyclic organic compound such as menthol alcohlate, ester or the like, rosin compound such as abietic acid salt or the like, siloxanes, boric acid organic compound and so on.
  • the temperatures for producing the desired metal or oxide through the heating of the paste containing these organic compounds are different depending upon the compounds to be used, the temperature is usually at 500 through 800 °C, which is preferable under the atmosphere containing oxygen.
  • the organic compound of the thermally decomposable property was used in the above description, there are a compound, which gives metal and/or oxide through the decomposition by the application of ultraviolet rays, such as ruthenate of naphthoquinone diazo compound having a carboxyl group, a novolak series of phenol resin compound, a compound with lead, silicon or bismuth, and so on.
  • ultraviolet rays such as ruthenate of naphthoquinone diazo compound having a carboxyl group, a novolak series of phenol resin compound, a compound with lead, silicon or bismuth, and so on.
  • the ultraviolet ray is applied upon the film of the paste for the decomposition operation.
  • a resistor layer of a uniform film of 0.3 through 3 pm in thickness may be provided.
  • the resistor layer is superior in thermal efficiency during the recording operation, because it is thin, without defects such as air bubbles being hardly provided therein.
  • the present invention can provide a thermal head which is provided with a resistor layer of a uniform, superior film having the thickness of 0.3 through 3 p m unavailable conventionally.
  • the present invention may provide a thermal head which is superior in recording quality, thermal efficiency.
  • Fig. 3 is a longitudinally sectional view of the essential portions showing the construction example of a thermal head in accordance with the present invention.
  • 1 is a base plate with the surfaces thereof being at least insulated. A steel plate covered with porcelain enamel on the surface thereof, an alumina base plate having a glaze layer on its surface, and so on are used.
  • 2 is a resistor layer formed on the surface thereof.
  • 3, 4 are electrodes formed on the resistor layer 2. Normally one electrode-is a common electrode, the other is an individual electrode, with such electrode pair being arranged in the line shape by plurality.
  • 5 is an abrasion-resistant layer covering the surfaces of these electrodes 3, 4 and the resistor layer 2, and comes into contact with the recording paper to transfer the heating of the resistor layer to it so as, also, to prevent the electrodes and the resistor layers from being worn out.
  • Fig. 4 shows the other construction example of the thermal head.
  • 11 is a basic plate, with the electrodes 13, 14 formed thereon, thereafter the resistor layer 12 and the abrasion-resistant layer 15 being formed.
  • a pair of electrode layers composed of gold are formed on the alumina base plate having the glaze layer of 50 ⁇ m in thickness on the surface.
  • the paste for resistor use was screen printed, heated in contact with both the electrodes between the electrode layers to form the resistor layer of 350 ⁇ m in width.
  • the paste for resistor use was made of the respective hexane acid salt of Ru, Rh, Si, B, Pb, ethylcellulose and terpineol, and was 50000 c p in viscosity. After the paste printing, it was left as it was and was dried, thereafter it was heated at 800 °C into the resistor layer.
  • the paste of borosilicate glass frit was printed on the resistor layer, heated to form the abrasion-resistant layer. It was to be noted that the mixing ratio of the hexane acid salt in the paste for resistor use was to become 10 : 4 : 14 : 4 : 68 by the weight ratio of Ru : Rh : Si : B : Pb
  • Octane acid salt of ruthenium, ethykalcoxide of ruthenium, respective ethylalcohlate of Pb, Si, B were mixed to become 8 : 70 : 15 7 by the weight ratio of Ru : Pb : Si : B, the paste with ethylcellulose, terpineol being added thereto was printed, heated into the resistor layer.
  • the other is the same as in the embodiment 1.
  • silicon carbide of 3 ⁇ m in thickness was formed into the abrasion-resistant layer by a sputtering method on the resistor layer.
  • Terpineol was further added to the paste of the embodiment 1 to provide 1000 c p in viscosity.
  • the paste was applied with the use of a spinner onto the steel plate having the enamel covered layer of 100 ⁇ m in thickness. The revolution number of the spinner was 2000 rpm. After the drying operation, it was heated at 800 °C, then the resistor was formed into the given pattern by a photolithography and etching method. Here, the etching liquid was the mixing liquid of sulfuric acid and ammonium fluoride. Then, the paste of gold ethylmerucaptid was printed, heated on the resistor layer to form a gold layer, and continuously formed in the given pattern the gold electrode layer by the photolithography and etching method. The paste composed of the respective hexane acid salt of Si, B, Pb, ethylcellulose, terpineol was printed, burned on it to form the abrasion-resistant layer.
  • the same paste film for resistor use in the embodiment 4 by a roll coater was provided onto the steel plate having the- enamel covered layer, heated at 800 °C into the resistor layer.
  • a chrome - copper layer was formed by a sputtering method on the resistor layer, the resistor layer, electrode layer were formed in a given pattern successively by the photolithography and etching of. the chrome - copper layer, the photolitho etching of the resistor layer. Thereafter, by the same method as in the embodiment 3, the abrasion-resistant layer was formed.
  • the paste for resistor use was discharged to form the film which comes into contact with both the electrodes, with the use of painting pen having a.slit of 350 ⁇ m X 10 ⁇ m in size between the electrodes.
  • the paste for resistor use here is the same as in the embodiment 1.
  • the paste film was heated at 800 °C after the drying operation into the resistor layer.
  • the paste of the borosilicate glass frit was printed, heated on the resistor layer to form the abrasion-resistant layer.
  • Ethylcellulose and terpineol was added to a mixture of 1 : 10 in the weight ratio between hexane acid salt and borosilicate glass frit so as to be used as the paste for resistor use.
  • the other was the same as in the embodiment 1.
  • Paste composed of gold ethylmercaptid, diphenyl siloxane, menthol compound of boron, ethylcellulose and terpneol was used as paste for resistor use.
  • the other is the same as in the embodiment 1.
  • the mixing ratio of organic compound in the paste was to become 0.15 : 1 by the weight ratio of gold : (Si + B).
  • a thermal head of a thick film type has an abrasion -proof layer composed of gold electrode, resistor layer, glass formed through the printing, burning of the paste on the alumina base plate having the glaze layer on the surface.
  • the paste which was used to form the resistor was provided by the addition of ethylcellulose and terpineol into the mixture of oxide ruthenium powder 40 % by weight of 0.1 ⁇ m in average granular diameter, 0.8 ⁇ m in maximum granular diameter, and borosilicate glass frit 60 % by weight.
  • the printed paste film was heated at 800 °C.
  • Comparison embodiment 2 Comparison embodiment 2
  • a thermal head of a thin film type has a resistor layer composed of Ta - Si, an electrode layer of Cr - Cu, and an abrasion-resistant layer composed of silicon carbide formed the alumina base plate having the glaze layer on the surface.
  • the resistor layer of the thermal head in accordance with the present invention has homogeneous composition distribution, is thin in film, with thermal capacity being small, so that the thermal efficiency is superior in the recording and the superior quality of recordings are given. Therefore, the present invention may be applied to a full color printer of higher gradation, a facsimile or a word processor and so on.

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Abstract

This invention relates to a thermal head including at least a pair of electrodes (3), (4), (13), (14), resistor layers (2), (12) in contact with both the electrodes (3), (4), (13), (14) and substrates (1), (11) supporting the electrodes (3), (4), (13), (14) and the resistor layers (2), (12). Each resistor layer (2), (12) consists of glass matrix and a metal of a resistor component element and/or its oxide entering the gaps between the atomic bonds in the matrix. Each resistor layer (2), (12) is made of a paste containing an organic compound of the resistor component element and an organic compound or glass frit of the glass matrix constituent element. Since its resistor layer is uniform, this thermal head provides high quality recording.

Description

    BACKGROUND OF THE INVENTION:
  • The present invention relates to a thermal head for use in recording apparatuses such as facsimile, full color printer, word processor and so on, and more particularly, to improvements in a resistor layer which is one of major components of the thermal head, and the manufacturing method thereof.
  • The thermal head is mainly composed of at least a pair of electrodes, resistor layers in contact with both the electrodes, base plates for supporting the electrodes and the resistor layers on the surfaces thereof, with at least the surfaces thereof being of insulating property, and abrasion-resistant layers formed on the resistor layers. And there are a thin film type and a thick film type depending upon how to manufacture it. The thin film type is formed by the sputtering, evaporation, etc. of an electrode, a resistor layer, an abrasion-resistant layer in vacuum. Also, the thick film type obtains gold electrodes, a resistor layer composed of a glass layer, Ru02 being scattered therein, and an abrasion-resistant layer composed of glass, by the respective printing, heating operations of, for example, paste of a decomposable organic compound of the gold, paste containing RU02 and glass frit, and paste of borosilicate glass frit, so that the thick film type may provide a thermal head of higher reliability, lower cost than the thin film type.
  • The thermal head heats the specified region of the resistor layer in contact with both the electrodes through the current flowing between a pair of electrodes so as to heat the specified region of the recording member, for example, a heat sensitive recording paper for giving one dot portion of recording. Accordingly, the important characteristics to be demanded for the thermal head are that the heating of the resistor layer is efficiently transmitted onto the side of the recording paper, and the heating of the resistor layer between the individual electrode pair disposed normally in a line shape is uniform. As the resistances of these resistor layers are unequal, and the respective heating amount is uneven, the concentration of the individual recording dots to be recorded on the recording paper become unequal, thus causing the lines of variable density on the recording to make the recording quality worse. The characteristics are emphasized especially as the thermal head for full color printer use which demands the gradation record. A cause for such uneven record concentration is considered to be the dispersion of the resistance values of the individual resistor dots. In order to reduce the resistance value dispersion of such individual resistor dots, a trimming step, in the thick film method, is adopted. This step applies the overload pulses on the individual dots of the resistor layer, thus making it possible to have the resistance value within ± 0.5 % of the target. On the other hand, in the thin film type, the resistance value of the individual resistor dot may be provided within f 2.5 % by the controlling operation of the conditions of the evaporation and sputtering for obtaining the resistor. But in the head of the thin film system, it is difficult to further improve the dispersion of the present resistance value, and in the head of the thick film system, the present system has problems as described hereinafter. The resistor layer of the thermal head of the present thick film type is formed by the screen-printing, heating of the paste composed of the resistor component Ru02, glass frit, organic binder. But, as the paste is a mixture between RuO2 powder and glass powder, the resistor layer to be produced by the paste is also a mixture of them. And, if RU02 powder which is small in granular diameter is used, the resistor -layer to be produced by the paste is often aggregated or is worse in the dispersion in the glass matrix, so that the powder becomes very large in diameter in the resistor layer obtained. In the result, the current is adapted to flow through the Ru02 powder in contact against each other. Accordingly, in order to obtain a resistor having a uniform resistance value, it is necessary to provide a considerable amount of Ru02 powder. On the other hand, as the preferential change in the resistance value is caused at a portion easy to be trimmed, especially, in a one resistor dot even if the dot resistance value is made constant -by the trimming, the heating is to be concentrated in one portion of one dot in the actual recording even when the dot resistance value has reached the target value, so that the normal dot shape is not obtained. The deviation of the current pass in such one resistor dot is due to unequal distribution of the conductive element like the Ru02 in one resistor dot.
  • As described hereinabove, in the conventional method of forming the resistor layer from a mixture between the RU02 and the glass powder, it was difficult to obtain the resistor layer uniform in the resistor value.
  • SUMMARY OF THE INVENTION:
  • Accordingly, an essential object of the present invention is to provide a thermal head which is free from such conventional inconveniences as described hereinabove, and has a resistor layer uniform in the resistance value so as to give recordings superior in quality.
  • Another important object of the present invention is to provide a method of obtaining a thermal head which gives recordings superior in quality.
  • In a thermal head having at least a pair of electrodes, resistor layers in contact against both the electrodes, base plates which support the electrodes and the resistor layers on the surfaces thereof, with at least the surfaces thereof being of insulating property, the thermal head of the present invention has the resistor layer composed of the matrix of the glass, and metal and/or oxide of resistor component element existed in the,gap of the atomic bond of the matrix. It is to be noted that the thermal head usually has an abrasion-resistant layer covering the resistor layer.
  • Here, a preferable method of obtaining the resistor layer of the thermal head comprises a step of forming by a printing, a spin coat, a painting method and so on the film of the paste containing the thermally decomposable organic compound of the resistor component element, and the thermally decomposable organic compound of the element for forming the matrix of the glass, and a step of producing a resistor layer composed of the glass matrix, the metal and/or oxide of the resistor component element dispersed in the matrix through the thermally decomposition of the organic compound in the paste by the heating processing.
  • The paste is preferable to be composed of the-organic compounds, and a solvent for dissolving these organic compounds, an organic binder to be dissolved in the solvent. In the paste, the organic compound of the resistor component element is mixed in a molecular level with the organic compound of the element for forming the matrix of the glass, the oxide of the element for forming the matrix of the glass the metal and/or oxide of the resistor component element are formed through the pyrolytic decomposition of them, and the metal and/or the oxide of the latter is taken into the matrix of the glass to be caused by the fusion of the above-described oxide so as to form the resistor layer. In the resistor layer to be produced in this manner,the metal and/or the oxide of the resistor component element is in a condition, where it is put into the gap of the atomic bond of the matrix of the glass in the atomic or molecular level. Accordingly, the resistor layer becomes extremely uniform in the composition, and the amount of the resistor component element becomes less than it was conventionally.
  • Fig. 1 shows the relationship between the ruthenium element containing percentage of the resistor layer composed of the glass matrix and mainly the oxide of the ruthenium dispersed in the matrix thereof, and the dispersion of the resistance value of the resistor layer. It is to be noted that the axis of ordinate related to the resistance value shows the value of α/R X 100. R is an average value of the resistance value, a is a standard deviation value.
  • In Fig. 1, A is the characteristics of the resistor layer obtained by the method of the present invention, B shows the characteristics of the resistor layer by the conventional method. In the case of the A, the granular diameter of the oxide of ruthenium is 1 or lower pm, while, in the case of the B, the granular diameter thereof is 5 or higher pm.
  • In the case of the B, when the Ru element containing amount is less than 10 % by weight, the dispersion of the resistance value b#comes larger suddenly. On the other hand, in the case of the A, if the Ru element containing amount is less, the dispersion of the resistance value is extremely low.
  • As another method of obtaining the resistor layer, there is a method of using the paste containing the thermally decomposable organic compound of the resistor component element, and the glass frit, instead of the paste. Even in this case, it is better for the paste to contain the solvent to dissolve the organic compound, and the organic binder to be dissolved in the solvent. When the paste is used, the dispersion property of the metal and/or oxide of the resistor component element in the producing resistor layer is inferior to that of the above-described method, but is extremely superior to that of the conventional method. Namely, the organic compound is in contact against the particles of the glass frit in the condition of the liquid in the paste, the metal and/or the oxide to be produced by the pyrolytic decomposition is dispersed in the molecular level onto the glass frit granular surface, so that they are taken into the glass matrix to be formed through the fusion of the glass frit in this condition.
  • Here, ruthenium is preferable among them, although there are ruthenium, gold, silver, nickel, chromium, tantalum or the like as the resistor component element to be applied to the present invention. The ruthenium exists mainly as an oxide in the resistor layer. The resistor layer using the ruthenium is extremely large in the temperature dependence property of the resistance value as shown in Fig. 2a. In order to improve it, it is better to jointly use rhodium. By the joint use of the rhodium, the temperature dependence property of the resistance value is improved as shown in Fig. 2b. Also, by the addition of the rhodium, the film forming property of the resistor layer is also improved. In the case of the joint use of the ruthenium and the rhodium, the weight ratio is proper to be 0 < Rh / Ru < 5.
  • Then, as the element for forming the matrix of the glass, there are provided boron, silicon for constituting glass borosilicate, and furthermore, lead for constituting glass lead borosilicate, lanthanum for constituting lanthanum series glass, and besides, bismuth and so on.
  • Also, in addition to the above description, when necessary, zirconium, titanium, vanadium, aluminum, tantalum, zinc and so on may be added.
  • As the thermally decomposable organic compound of the above-described element, there are alcohlate such as ethyl alcoxide, isopropoxide or the like, fatty acid ester to be represented by hexane acid ester, polycyclic organic compound such as menthol alcohlate, ester or the like, rosin compound such as abietic acid salt or the like, siloxanes, boric acid organic compound and so on.
  • Although the temperatures for producing the desired metal or oxide through the heating of the paste containing these organic compounds are different depending upon the compounds to be used, the temperature is usually at 500 through 800 °C, which is preferable under the atmosphere containing oxygen.
  • Although the organic compound of the thermally decomposable property was used in the above description, there are a compound, which gives metal and/or oxide through the decomposition by the application of ultraviolet rays, such as ruthenate of naphthoquinone diazo compound having a carboxyl group, a novolak series of phenol resin compound, a compound with lead, silicon or bismuth, and so on.
  • When these compounds are used, the ultraviolet ray is applied upon the film of the paste for the decomposition operation.
  • By the present invention, a resistor layer of a uniform film of 0.3 through 3 pm in thickness may be provided. The resistor layer is superior in thermal efficiency during the recording operation, because it is thin, without defects such as air bubbles being hardly provided therein.
  • It was difficult to obtain a uniform composition of film with the film thickness of 0.3 µm or more in the resistor layer of the conventional thin film type. On the other hand, in the thick film type, it was easy to obtain the stable film with thickness being 0.3 pm or more, but it was difficult to form the uniform film. In this manner, in the conventional art, it was difficult to have the stable film having the thickness in the range of 0.3 µm through 3.0 pm. The present invention can provide a thermal head which is provided with a resistor layer of a uniform, superior film having the thickness of 0.3 through 3 p m unavailable conventionally.
  • The present invention may provide a thermal head which is superior in recording quality, thermal efficiency.
  • BRIEF DESCRIPTION OF THE DRAWINGS:
  • These and other objects and features of the present invention will become apparent from the following description taken in conjunction with the preferred embodiment thereof with reference to the accompanying drawings, in which;
    • Fig. 1 is a graph showing the relationship between ruthenium containing amount of a resistor layer with the ruthenium as the resistor component and the dispersion of the resistance value of the resistor layer.
    • Fig. 2 is a graph showing the temperature dependence of the resistor value of the resistor layer which contains also ruthenium; and
    • Fig. 3 and Fig. 4 are cross-sectional views each showing the essential portions of the thermal head in accordance with the present invention.
    DETAILED DES=IPTION OF THE INVENTON:
  • Before the description of the present invention proceeds, it is to be noted that like parts are designated by like reference numerals through the accompanying drawings.
  • Fig. 3 is a longitudinally sectional view of the essential portions showing the construction example of a thermal head in accordance with the present invention.
  • 1 is a base plate with the surfaces thereof being at least insulated. A steel plate covered with porcelain enamel on the surface thereof, an alumina base plate having a glaze layer on its surface, and so on are used. 2 is a resistor layer formed on the surface thereof. 3, 4 are electrodes formed on the resistor layer 2. Normally one electrode-is a common electrode, the other is an individual electrode, with such electrode pair being arranged in the line shape by plurality. 5 is an abrasion-resistant layer covering the surfaces of these electrodes 3, 4 and the resistor layer 2, and comes into contact with the recording paper to transfer the heating of the resistor layer to it so as, also, to prevent the electrodes and the resistor layers from being worn out.
  • Fig. 4 shows the other construction example of the thermal head. 11 is a basic plate, with the electrodes 13, 14 formed thereon, thereafter the resistor layer 12 and the abrasion-resistant layer 15 being formed.
  • The concrete embodiment of the present invention will be described hereinafter.
  • Embodiment 1
  • A pair of electrode layers composed of gold are formed on the alumina base plate having the glaze layer of 50 µm in thickness on the surface. The paste for resistor use was screen printed, heated in contact with both the electrodes between the electrode layers to form the resistor layer of 350 µm in width. The paste for resistor use was made of the respective hexane acid salt of Ru, Rh, Si, B, Pb, ethylcellulose and terpineol, and was 50000 c p in viscosity. After the paste printing, it was left as it was and was dried, thereafter it was heated at 800 °C into the resistor layer. The paste of borosilicate glass frit was printed on the resistor layer, heated to form the abrasion-resistant layer. It was to be noted that the mixing ratio of the hexane acid salt in the paste for resistor use was to become 10 : 4 : 14 : 4 : 68 by the weight ratio of Ru : Rh : Si : B : Pb.
  • Embodiment 2
  • Octane acid salt of ruthenium, ethykalcoxide of ruthenium, respective ethylalcohlate of Pb, Si, B were mixed to become 8 : 70 : 15 7 by the weight ratio of Ru : Pb : Si : B, the paste with ethylcellulose, terpineol being added thereto was printed, heated into the resistor layer. The other is the same as in the embodiment 1.
  • Embodiment 3
  • The same resistor layer as in the embodiment 1 was formed, silicon carbide of 3 µm in thickness was formed into the abrasion-resistant layer by a sputtering method on the resistor layer.
  • Embodiment 4
  • Terpineol was further added to the paste of the embodiment 1 to provide 1000 c p in viscosity. The paste was applied with the use of a spinner onto the steel plate having the enamel covered layer of 100 µm in thickness. The revolution number of the spinner was 2000 rpm. After the drying operation, it was heated at 800 °C, then the resistor was formed into the given pattern by a photolithography and etching method. Here, the etching liquid was the mixing liquid of sulfuric acid and ammonium fluoride. Then, the paste of gold ethylmerucaptid was printed, heated on the resistor layer to form a gold layer, and continuously formed in the given pattern the gold electrode layer by the photolithography and etching method. The paste composed of the respective hexane acid salt of Si, B, Pb, ethylcellulose, terpineol was printed, burned on it to form the abrasion-resistant layer.
  • Embodiment 5
  • The same paste film for resistor use in the embodiment 4 by a roll coater was provided onto the steel plate having the- enamel covered layer, heated at 800 °C into the resistor layer. A chrome - copper layer was formed by a sputtering method on the resistor layer, the resistor layer, electrode layer were formed in a given pattern successively by the photolithography and etching of. the chrome - copper layer, the photolitho etching of the resistor layer. Thereafter, by the same method as in the embodiment 3, the abrasion-resistant layer was formed.
  • Embodiment 6
  • Many individual electrodes were formed in the line shape on the alumina base plate having the glaze layer on the surface and also the common electrode was formed in opposition to the individual electrode. The paste for resistor use was discharged to form the film which comes into contact with both the electrodes, with the use of painting pen having a.slit of 350 µm X 10 µm in size between the electrodes. The paste for resistor use here is the same as in the embodiment 1. The paste film was heated at 800 °C after the drying operation into the resistor layer. The paste of the borosilicate glass frit was printed, heated on the resistor layer to form the abrasion-resistant layer.
  • Embodiment 7
  • Ethylcellulose and terpineol was added to a mixture of 1 : 10 in the weight ratio between hexane acid salt and borosilicate glass frit so as to be used as the paste for resistor use. The other was the same as in the embodiment 1.
  • Embodiment 8
  • Paste composed of gold ethylmercaptid, diphenyl siloxane, menthol compound of boron, ethylcellulose and terpneol was used as paste for resistor use. The other is the same as in the embodiment 1. However, the mixing ratio of organic compound in the paste was to become 0.15 : 1 by the weight ratio of gold : (Si + B).
  • Comparison embodiment 1
  • A thermal head of a thick film type has an abrasion -proof layer composed of gold electrode, resistor layer, glass formed through the printing, burning of the paste on the alumina base plate having the glaze layer on the surface. Here, the paste which was used to form the resistor was provided by the addition of ethylcellulose and terpineol into the mixture of oxide ruthenium powder 40 % by weight of 0.1 µm in average granular diameter, 0.8 µm in maximum granular diameter, and borosilicate glass frit 60 % by weight. The printed paste film was heated at 800 °C. Comparison embodiment 2
  • A thermal head of a thin film type has a resistor layer composed of Ta - Si, an electrode layer of Cr - Cu, and an abrasion-resistant layer composed of silicon carbide formed the alumina base plate having the glaze layer on the surface.
  • The various characteristics of the thermal heads in the above-described respective embodiments and the comparison embodiments will be shown in the following table.
    Figure imgb0001
  • As is clear from the foregoing description, according to the arrangement of the present invention, the resistor layer of the thermal head in accordance with the present invention has homogeneous composition distribution, is thin in film, with thermal capacity being small, so that the thermal efficiency is superior in the recording and the superior quality of recordings are given. Therefore, the present invention may be applied to a full color printer of higher gradation, a facsimile or a word processor and so on.
  • Although the present invention has been fully described by way of example with reference to the accompanying drawings, it is to be noted here that various changes and modifications will be apparent to those skilled in the art. Therefore, unless otherwise such changes and modifications depart from the scope of the present invention, they should be construed as included therein.

Claims (22)

1. A thermal head comprising, as components, at least a pair, of electrodes, resistor layers in contact against both the electrodes, and base plate w4th the electrodes and the resistor layers being supported on the surfaces thereof, at least the surface thereof being of an insulation property, being characterized in that the resistor layer is composed of the matrix of glass, a metal and/or an oxide of a resistor component element existed in the gap of the atomic bonding of the matrix.
2. A thermal head described in claim 1, wherein a resistor component element is ruthenium, and is dispersed in the glass matrix mainly as oxide.
3. A thermal head described in claim 2, wherein rhodium is further contained as the resistor component element.
4. A thermal head described in claim 2 or claim 3, wherein ruthenium-contained in the resistor layer is 10 % or lower by weight.
5. A thermal head described in claim 1, wherein the resistor component element is selected from a group composed of gold, silver, nickel, chrome and tantalum.
6. A thermal head described in claim 1, wherein glass for constituting the resistor layer is borosilicate series glass or lead borosilicate series glass.
7. A thermal head described in claim 1, wherein glass for forming the resistor layer is of a lanthanum series glass.
8. A .thermal head comprising at least a pair of electrodes, resistor layers in contact against both the electrodes, and basic plate for supporting the electrodes and the resistor layers on the surface thereof, at least the surface thereof being of insulating property, being characterized in that the resistor layer is composed of the matrix of the glass, ruthenium oxide dispersed in molecular level mainly in the matrix.
9. A thermal head described in claim 8, wherein rhodium or the oxide thereof is further dispersed at an atomic level or a molecular level in the matrix.
10. A thermal head described in claim 8, wherein the matrix is borosilicate series glass or lead borosilicate series glass.
11. A thermal head described in claim 8, wherein the resistor component element is selected from a group composed of gold, silver, nickel, chrome and tantalum.
12. A method of manufacturing a thermal head having, as components, at least a pair of electrodes, resistor layers in contact against both the electrodes, and basic plate for supporting the electrodes and the resistor layers on the surface thereof, at least the surface thereof being of insulating property, being characterized in that a process of forming the resistor layer is composed of a step of forming on the base plate provided before the electrode is formed or after it is formed the film of the paste containing the themally decomposable organic compound of the resistor component element and the thermally decomposable organic compound of the element for forming the matrix of the glass, and a step of pyrolytic decomposition of the organic compound in the paste by the heating processing so as to produce a resistor layer composed of glass matrix, metal and/or oxide of the resistor component element dis- persed in the matrix.
13. A method of manufacturing a thermal head described in claim 12, wherein the paste is composed of organic compounds, and a solvent for dissolving them, an organic binder soluble in the solvent.
14. A method of manufacturing a thermal head described in claim 12, wherein a resistor component element is ruthenium.
15. A method of manufacturing a thermal head described in claim 12, wherein rhodium is further contained as the resistor component element..
16. A method of manufacturing a thermal head having, as components, at least a pair of electrodes, resistor layers in contact against both the electrodes, and base plate which support both the electrodes and the resistor layers on the surface thereof, at least the surface thereof being of insulating property, being characterized in that a process for forming the resistor layers is composed of a step of forming on the base plate provided before the electrode is formed or after it is -formed the film of the paste containing the thermally decomposable organic compound of the resistor component element and the glass frit, and a step of pyrolytic decomposition of the organic compound in the paste by the heating processing so as to produce a resistor layer composed of glass matrix, metal and/or oxide of the resistor component element dispersed in the matrix.
17. A method of manufacturing a thermal head described in claim 16, wherein the paste is composed of the organic compound and a solvent for dissolving them, an organic binder soluble in the solvent.
18. A method of manufacturing a thermal head described in claim 16, wherein the resistor component element is ruthenium.
19. A method of manufacturing a thermal head described in claim 18, wherein rhodium is further contained as the resistor component element.
20. A method of manufacturing a thermal head described in claim 16, wherein the resistor component element is selected from a group of gold, silver nickel, chrome and tantalum.
21. A method of manufacturing a thermal head having, as components, at least a pair of electrodes, resistor layers in contact against both the electrodes, and basic plate for supporting the electrodes and the resistor layers on the surface thereof, at least the surface thereof being of insulating property, being characterized in that process for forming the resistor layers is composed of a step of forming on the basic plate provided before the electrode is formed or after it is formed the film of the paste containing a ultraviolet-ray decomposable organic compound of the resistor component element and a ultraviolet ray decomposable organic compound of the element for forming the matrix of the glass, and a step of decomposable of the organic compound in the paste by the application of the ultraviolet- ray so as to produce the resistor layer composed of glass matrix, metal and/or oxide of the resistor component element dispersed in the matrix.
22. A method of manufacturing a thermal head in accordance with claim 21, wherein the paste is composed of the organic compound and a solvent for dissolving them, an organic binder soluble in the solvent.
EP19890900304 1987-12-10 1988-12-08 Thermal head and production thereof. Withdrawn EP0344329A4 (en)

Applications Claiming Priority (8)

Application Number Priority Date Filing Date Title
JP62312744A JPH0745250B2 (en) 1987-12-10 1987-12-10 Thermal head manufacturing method
JP312744/87 1987-12-10
JP161667/88 1988-06-29
JP63161667A JPH0755564B2 (en) 1988-06-29 1988-06-29 Thermal head and manufacturing method thereof
JP184356/88 1988-07-22
JP184354/88 1988-07-22
JP63184354A JP2548314B2 (en) 1988-07-22 1988-07-22 Manufacturing method of thermal head
JP63184356A JPH088162B2 (en) 1988-07-22 1988-07-22 Thermal head and manufacturing method thereof

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EP0344329A1 true EP0344329A1 (en) 1989-12-06
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Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4203025A (en) * 1977-08-19 1980-05-13 Hitachi, Ltd. Thick-film thermal printing head

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US3271193A (en) * 1962-09-20 1966-09-06 Cts Corp Electrical resistance element and method of making the same
JPH0637601B2 (en) * 1988-05-31 1994-05-18 ハニー化成株式会社 Resin composition for electrodeposition coating

Patent Citations (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4203025A (en) * 1977-08-19 1980-05-13 Hitachi, Ltd. Thick-film thermal printing head

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
See also references of WO8905232A1 *

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WO1989005232A1 (en) 1989-06-15
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KR900700297A (en) 1990-08-13

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