PL438210A1 - Method for producing an organic resistor with the required resistance by inkjet printing - Google Patents

Method for producing an organic resistor with the required resistance by inkjet printing

Info

Publication number
PL438210A1
PL438210A1 PL438210A PL43821021A PL438210A1 PL 438210 A1 PL438210 A1 PL 438210A1 PL 438210 A PL438210 A PL 438210A PL 43821021 A PL43821021 A PL 43821021A PL 438210 A1 PL438210 A1 PL 438210A1
Authority
PL
Poland
Prior art keywords
resistor
required resistance
layer
electrodes
inkjet printing
Prior art date
Application number
PL438210A
Other languages
Polish (pl)
Other versions
PL243747B1 (en
Inventor
Adam Łuczak
Jarosław Jung
Jacek Ulański
Original Assignee
Politechnika Łódzka
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 Politechnika Łódzka filed Critical Politechnika Łódzka
Priority to PL438210A priority Critical patent/PL243747B1/en
Publication of PL438210A1 publication Critical patent/PL438210A1/en
Publication of PL243747B1 publication Critical patent/PL243747B1/en

Links

Landscapes

  • Parts Printed On Printed Circuit Boards (AREA)
  • Laminated Bodies (AREA)

Abstract

Sposób wytwarzania organicznego rezystora o wymaganej rezystancji metodą druku atramentowego, polegający na nadrukowywaniu na elastycznym podłożu z folii poliestrowej przystosowanej do druku atramentowego najpierw elektrod rezystora z atramentu nanosrebrowego, poddaniu elektrod z atramentu nanosrebrowego spiekaniu w temperaturze 150°C, a następnie na wytworzeniu na elektrodach warstwy przewodzącej prąd elektryczny nadającej wytwarzanemu rezystorowi wymaganą rezystancję, charakteryzuje się tym, że z atramentu nanosrebrowego nadrukowuje się elektrody grzebieniowe rezystora, w odległości jedna od drugiej 100 µm, zaś warstwę przewodzącą prąd elektryczny nadającą wytwarzanemu rezystorowi wymaganą rezystancję, korzystnie także o kształcie grzebieniowym, nadrukowuje się na elektrodach grzebieniowych z poli(3-heksylo tiofenu) i poddaje tę warstwę fotoutlenieniu na powietrzu. Pole powierzchni warstwy z poli(3-heksylo tiofenu) o określonym ciężarze cząsteczkowym, zapewniające uzyskanie wymaganej rezystancji rezystora lub ciężar cząsteczkowy poli(3-heksylo tiofenu) dla określonego pola powierzchni warstwy z tego polimeru, zapewniający uzyskanie wymaganej rezystancji rezystora, dobiera się eksperymentalnie.A method of producing an organic resistor with the required resistance by inkjet printing, consisting in printing nanosilver ink resistor electrodes on a flexible substrate made of polyester film adapted for inkjet printing, subjecting the nanosilver ink electrodes to sintering at 150°C, and then creating a layer on the electrodes electrically conductive, giving the manufactured resistor the required resistance, characterized in that the comb electrodes of the resistor are printed with nanosilver ink, at a distance of 100 µm from one another, and the electrically conductive layer, giving the manufactured resistor the required resistance, preferably also comb-shaped, is overprinted on poly(3-hexyl thiophene) comb electrodes and subject this layer to photo-oxidation in air. The surface area of a layer of poly(3-hexyl thiophene) with a specific molecular weight, ensuring the required resistance of the resistor, or the molecular weight of poly(3-hexyl thiophene) for a specific surface area of the layer of this polymer, ensuring the required resistance of the resistor, is selected experimentally.

PL438210A 2021-06-21 2021-06-21 A method of producing an organic resistor with the required resistance by inkjet printing PL243747B1 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
PL438210A PL243747B1 (en) 2021-06-21 2021-06-21 A method of producing an organic resistor with the required resistance by inkjet printing

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PL438210A PL243747B1 (en) 2021-06-21 2021-06-21 A method of producing an organic resistor with the required resistance by inkjet printing

Publications (2)

Publication Number Publication Date
PL438210A1 true PL438210A1 (en) 2022-12-27
PL243747B1 PL243747B1 (en) 2023-10-09

Family

ID=84603227

Family Applications (1)

Application Number Title Priority Date Filing Date
PL438210A PL243747B1 (en) 2021-06-21 2021-06-21 A method of producing an organic resistor with the required resistance by inkjet printing

Country Status (1)

Country Link
PL (1) PL243747B1 (en)

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6860000B2 (en) * 2002-02-15 2005-03-01 E.I. Du Pont De Nemours And Company Method to embed thick film components
US7049559B2 (en) * 2002-06-19 2006-05-23 Matsushita Electric Industrial Co., Ltd. Flexible PTC heating element and method of manufacturing the heating element
WO2004097857A2 (en) * 2003-04-25 2004-11-11 Key Safety Systems, Inc. Thick film thermistor
DE102017101262A1 (en) * 2017-01-24 2018-07-26 Deutsches Zentrum für Luft- und Raumfahrt e.V. Ultrathin foil thermistors

Also Published As

Publication number Publication date
PL243747B1 (en) 2023-10-09

Similar Documents

Publication Publication Date Title
Castro et al. All-inkjet-printed low-pass filters with adjustable cutoff frequency consisting of resistors, inductors and transistors for sensor applications
Cai et al. Direct printing for additive patterning of silver nanowires for stretchable sensor and display applications
Hutchings et al. Inkjet technology for digital fabrication
Dankoco et al. Temperature sensor realized by inkjet printing process on flexible substrate
Weng et al. Printing conducting polymers
Nitani et al. Organic temperature sensors based on conductive polymers patterned by a selective-wetting method
Khan et al. Printing sensors on biocompatible substrates for selective detection of glucose
US20080187651A1 (en) Conductive ink formulations
US7923264B2 (en) Ferroelectric passive memory cell, device and method of manufacture thereof
Schnitker et al. Rapid prototyping of ultralow‐cost, inkjet‐printed carbon microelectrodes for flexible bioelectronic devices
Cui Printing practice for the fabrication of flexible and stretchable electronics
Tao et al. High-reproducibility, flexible conductive patterns fabricated with silver nanowire by drop or fit-to-flow method
Franco et al. Printed memristors: an overview of ink, materials, deposition techniques, and applications
Cho et al. Humidity sensors fabricated with photo-curable electrolyte inks using an ink-jet printing technique and their properties
Srichan et al. Inkjet printing PEDOT: PSS using desktop inkjet printer
PL438210A1 (en) Method for producing an organic resistor with the required resistance by inkjet printing
Li et al. Printing green nanomaterials for organic electronics
Gardner et al. Aluminum-doped zinc oxide (zno) inkjet-printed piezoelectric array for pressure gradient mapping
Borghetti et al. Electrical characterization of PEDOT: PSS strips deposited by inkjet printing on plastic foil for sensor manufacturing
US20220085309A1 (en) Organic electrochemical transistor having an improved conductive channel
Yoon et al. Double-shot inkjet printing for high-conductivity polymer electrode
Zergioti Laser printing of organic electronics and sensors
CN102736437A (en) Pattern formation apparatus and pattern formation method
Angeli et al. Reliability of inkjet printed silver nanoparticle interconnects on deformable substrates tested through an electromechanical in-situ technique
Chekusova et al. A universal approach to a structured polymer substrate for manufacturing a printed polymer gas sensor based on a field effect transistor