• Title/Summary/Keyword: 요구적출형 프린팅

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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 $8{\mu}m$.

High Speed and Continuous Electrospinning Printing Using Polymer Ink (고분자 폴리머 잉크를 이용한 고속 연속 전기 방사 프린팅)

  • Zhang, Da-Hai;Kwon, Kye-Si
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.39 no.4
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    • pp.379-384
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    • 2015
  • Electrospinning has recently been used for micropatterning. The electrospinning method as a patterning tool has the advantage of a rapid patterning speed because it is based on a continuous printing mode rather than a drop-on-demand mode. To obtain stable continuous printing, a high molecular weight polymer must be mixed with functional materials for patterning. In this paper, polyethylene oxide (PEO) was used. The effect of polymer on viscosity and formation of a Taylor cone jet from the electrospinning nozzle was investigated. Finally, the electrospinning patterning results of a silver paste ink on a glass substrate were investigated.

A Study of Substrate Surface Treatment and Metal Pattern Formation using Inkjet Printing Technology (잉크젯 프린팅 기술을 이용한 기판 표면처리와 금속 패턴 형성에 관한 연구)

  • Jo, Yong-Min;Park, Sung-Jun
    • Journal of ILASS-Korea
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    • v.17 no.1
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    • pp.20-26
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    • 2012
  • Inkjet printing is one of the direct writing technologies and is able to form a pattern onto substrate by dispensing droplets in desired position. Also, by inkjet technology manufacturing time and production costs can be reduced, and procedures can be more efficient. To form a metal pattern, it must be harmonized with conductive nano ink, printing process, sintering, and surface treatment. In this study, micro patterning of conductive line has been investigated using the piezoelectric printhead driven by a bipolar voltage signal is used to dispense $20-40{\mu}m$ diameter droplets and silver nano ink which consists of 50 nm silver particles. In addition, hydrophobic treatment of surface, overlap printing techniques, and sintering conditions with changing temperature and times to achieve higher conductivity.

A Study on High Viscosity Phosphor Dispensing Process for Implementation of High-Efficiency White LED (고효율 백색 발광다이오드 구현을 위한 고점도 형광체 정량 토출 공정 연구)

  • Yang, Young-Jin;Kim, Hyung-Chan;Ko, Jeong-Beom;Yang, Bong-Su;Dang, Hyun-Woo;Doh, Yang-Hoi;Cho, Kyung-Ho;Choi, Kyung-Hyun
    • Clean Technology
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    • v.20 no.2
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    • pp.97-102
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    • 2014
  • Currently various studies are underway for dispensing high-viscosity phosphor. These studies have reported limitations and challenges in the dispensing process. The discharged amount of phosphor was approximately the same each time which is important for the implementation of high-efficiency white LED technology. This paper present high-viscosity phosphor dispensing process for white LED implementation by using electrostatic printing technology. The voltage controlled DOD (Drop-On-Demand) discharge experiment was studied to determine angle of drop meniscus at nozzle and dot diameter. With increase in Discharge voltage, the discharge angle of meniscus increased while dot diameter decreased. Therefore it can be concluded that we can control the discharge rate by controling the discharge angle of meniscus.