• Title/Summary/Keyword: Inkjet Printing Method

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Electrohydrodynamic Inkjet Printing System for Ultrafine Patterning (초정밀 미세 패턴을 위한 전기 수력학 잉크젯 프린팅 시스템)

  • Roh, Hyeong-Rae;Go, Jung-Kook;Kwon, Kye-Si
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.37 no.9
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    • pp.873-877
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    • 2013
  • The application of inkjet technology has been broadening from home printers to manufacturing tools. Recently, there have been demands for high-resolution printing, especially in the field of printed electronics applications. To improve upon the conventional inkjet printing patterning method, electrohydrodynamic (EHD) inkjet technology has recently attracted attention because droplets smaller than the nozzle diameter can be ejected and materials with wider viscosity range can be used for jetting. In this study, an EHD jet printing system for fine patterning is presented. To print various patterns based on drop on demand printing, vector and raster printing algorithm are implanted in the printing software. Fine conductive patterns with line width of less than $7{\mu}m$ can be easily achieved via EHD jet using a nozzle with inner diameter of $8{\mu}m$.

Visualization of Electro-hydrodynamic Ink Jetting using CCD Camera (CCD 카메라를 사용한 전기수력학적 잉크젯 토출 현상 가시화)

  • Kwon, Kye-Si;Lee, Dae-Yong
    • Journal of the Korean Society for Precision Engineering
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    • v.29 no.3
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    • pp.295-301
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    • 2012
  • The method for spraying of liquids through an electrical field has become a printing method since it can make very small droplet. For electro-hydrodynamic jet printing to become a reliable jetting tool, the jetting performance should be characterized with respect to various jetting conditions. To optimize jetting conditions, the jetting behavior should be measured. In this study, we present a visualization techniques to measure jetting behavior from electro-hydrodynamic (EHD) inkjet head. Unlike most previous method, we use the CCD camera to measure the jetting behavior. For this purpose, LED light is synchronized with jetting signal and sequential image was obtained by adjusting the delay time of the LED light. Finally, merits and demerits of using CCD camera were discussed to measure jetting image from EHD inkjet head.

Development of Inkjet Printing System for Printed Electronics (전자 인쇄를 위한 잉크젯 프린팅 시스템 개발)

  • Kwon, Kye-Si;Go, Jung-Kook;Kim, Jin-Won
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.34 no.10
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    • pp.1537-1541
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    • 2010
  • An inkjet printing system for printed electronics was developed. In this study, a printing algorithm was mainly discussed. In order to print a pattern image at a target location, we developed a hardware and software algorithm for determining the distances between a substrate camera and the selected nozzles. We implemented a vector-printing algorithm where AutoCAD dxf file was used for XY motion control and for printing. We also developed printing method using bitmap images. The technical issues in using CAD drawings and bitmap images were discussed.

Characterization of Inkjet-Printed Silver Patterns for Application to Printed Circuit Board (PCB)

  • Shin, Kwon-Yong;Lee, Minsu;Kang, Heuiseok;Kang, Kyungtae;Hwang, Jun Young;Kim, Jung-Mu;Lee, Sang-Ho
    • Journal of Electrical Engineering and Technology
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    • v.8 no.3
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    • pp.603-609
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    • 2013
  • In this paper, we describe the analysis of inkjet-printed silver (Ag) patterns on epoxy-coated substrates according to several reliability evaluation test method guidelines for conventional printed circuit boards (PCB). To prepare patterns for the reliability analysis, various regular test patterns were created by Ag inkjet printing on flame retardant 4 (FR4) and polyimide (PI) substrates coated with epoxy for each test method. We coated the substrates with an epoxy primer layer to control the surface energy during printing of the patterns. The contact angle of the ink to the coated epoxy primer was $69^{\circ}$, and its surface energy was 18.6 $mJ/m^2$. Also, the substrate temperature was set at $70^{\circ}C$. We were able to obtain continuous line patterns by inkjet printing with a droplet spacing of $60{\mu}m$. The reliability evaluation tests included the dielectric withstanding voltage, adhesive strength, thermal shock, pressure cooker, bending, uniformity of line-width and spacing, and high-frequency transmission loss tests.

EHD 원리를 이용한 정전기장 유도 잉크젯 프린터 헤드의 마이크로 Drop-on-Demand 제팅 성능 연구

  • Choe, Jae-Yong;Kim, Yong-Jae;Son, Sang-Uk;An, Gi-Cheol;Lee, Seok-Han;Go, Han-Seo;Nguyen, Vu Dat;Byeong, Do-Yeong
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.1947-1950
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    • 2008
  • Printing technology is a very useful method in the several process of industrial fabrication due to noncontact and fast pattern generation. To make micro pattern, we investigate the electrostatic induced inkjet printer head for micro droplet generation and drop-on-demand jetting. In order to achieve the drop-on-demand micro droplet ejection by the electrostatic induced inkjet printer head, the pulsed DC voltage is supplied. In order to find optimal pulse conditions, we tested jetting performance for various bias and pulse voltages for drop-on-demand ejection. In this result, we have successful drop-on-demand operation and micro patterning. Therefore, our novel electrostatic induced inkjet head printing system will be applied industrial area comparing conventional printing technology.

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All Inkjet Printed Plastic RFID Tag

  • Cho, Gyou-Jin;Song, Jae-Hee;Jung, Min-Hoon;Lee, Bock-Im;Kim, Sun-Hee;Lim, Nam-Soo;Lee, Na-Young
    • Proceedings of the Polymer Society of Korea Conference
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    • 2006.10a
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    • pp.171-171
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    • 2006
  • In this presentation, we would like to report an inkjet printing method to produce 1 to 2 bit RFID tag working in the range of 6 to 28 MHz with or without transistors. The inkjet printing method especially for the formation of transistors, inductors, capacitors will be presented by the view of polymer chemistry. This presentation also includes the printing schemes for memory cell, ring oscillator, rectifier, antenna, and so forth for constructing RFID tag. I illustrate these strategies by describing recent my works on the formation of all SWNT-TFT and conducting polymer-silver nanocomposite inks that can be applied in the construction of electronic devices.

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Ultrafine ITO Nanoparticle for Ink Jet Printing

  • Hong, Sung-Jei;Kim, Yong-Hoon;Han, Jeong-In
    • 한국정보디스플레이학회:학술대회논문집
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    • 2007.08a
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    • pp.467-470
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    • 2007
  • Ultrafine Indium tin oxide (ITO) nanoparticle was successfully fabricated by low temperature synthetic method (LTSM). Mean size of ITO nanoparticle is 5 nm, and uniformly dispersed with (222) orientated cubic structure. Using the nanoparticle, ITO thin film with good optical and electrical properties was fabricated by inkjet printing.

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Additive Manufacturing of Various Ceramic Composition Using Inkjet Printing Process (잉크젯 프린팅을 이용한 연속 조성 세라믹 화합물 구조체 형성)

  • Park, Jae-Hyeon;Choi, Jung-Hoon;Hwang, Kwang-Taek;Kim, Jin-Ho
    • Korean Journal of Materials Research
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    • v.30 no.11
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    • pp.627-635
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    • 2020
  • 3D printing technology is a processing technology in which 3D structures are formed by fabricating multiple 2D layers of materials based on 3D designed digital data and stacking them layer by layer. Although layers are stacked using inkjet printing to release various materials, it is still rare for research to successfully form a product as an additive manufacture of multi-materials. In this study, dispersion conditions are optimized by adding a dispersant to an acrylic monomer suitable for inkjet printing using Co3O4 and Al2O3. 3D structures having continuous composition composed of a different ceramic material are manufactured by printing using two UV curable ceramic inks whose optimization is advanced. After the heat treatment, the produced structure is checked for the formation and color of the desired crystals by comparing the crystalline analysis according to the characteristics of each part of the structure with ceramic pigments made by solid phase synthesis method.

Inkjet Printing Using Cu Nano Powder Ink Coated with 1-Octanethiol in Dry Method (건식법으로 1-Octanethiol 코팅한 Cu 나노 분말 잉크의 잉크젯 인쇄 기술 적용)

  • Her, Jae-Hak;Park, Shin-Young;Haque, Mominul Md.;Lee, Caroline Sun-Yong
    • Journal of Powder Materials
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    • v.18 no.4
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    • pp.322-326
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    • 2011
  • Inkjet printing was successfully done using Cu nano powder ink after these Cu nano powders were dry-coated with 1-octanethiol for oxidation prevention. 1-octanethiol, which is Self-Assembled Multi-layers (SAMs), was coated approximately 10-nm thick on the surface of Cu nano powders. 1-Octanol, which has the same chain length as that for 1-octanethiol, was used as a solvent to make the ink for inkjet printing. As a result, the fabricated ink was dispersed for about 4 weeks, and after printing and heat treatment at $350^{\circ}C$ for 4 hours, the resistivity for the printed pattern was measured to be $1.15{\times}10^{-5}{\Omega}{\cdot}cm$.

Multi-head Inkjet Patterning System for Manufacturing a Full Color Polymer Light Emitting Device (pLED) (고분자 유기 EL 제조를 위한 멀티헤드형 잉크젯 패터닝 시스템)

  • Oh, Je-Hoon;Kim, Si-Kyoung;Yoon, Hee-Youl;Oh, Se-Il;Kang, Yoo-Myung;Kim, Kwang-Il
    • Proceedings of the KSME Conference
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    • 2003.04a
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    • pp.1219-1225
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    • 2003
  • According to the increase of lifetime and efficiency, the interest in the pLED has dramatically increased recently because pLED can be applied to large-size and flexible displays. The core process in the manufacture of pLED is the printing process of red, green and blue light emitting polymers (LEP), and inkjet printing method is one of the promising technology to print red, green and blue LEP on glass substrates. In this work, we developed a multi-head inkjet patterning system with 3 heads for each color. The developed inkjet patterning system is composed of the precise positioning system, head controller circuit, real-time ink drop evaluation system, maintenance system, and stable ink supply system. Finally, we investigated the stability and reliability of the system by printing red, green and blue LEP on the dummy substrate.

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