• 제목/요약/키워드: Elastomer Stamp

검색결과 6건 처리시간 0.022초

Micro LED의 전사 기술 (Transfer technology of Micro LED)

  • 전인학;유재수;주병권
    • 인포메이션 디스플레이
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    • 제19권6호
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    • pp.41-51
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    • 2018
  • 차세대 디스플레이로 부상하고 있는 Micro LED는 현재까지 여러 기술적인 문제로 상용화가 어려운 상황이다. 특히 Micro 단위로 작은 LED를 디스플레이 기판으로 옮기는 전사(Transfer) 기술이 상용화를 가지고 올 수 있는 핵심 기술이며, 중요한 변수다. 전사기술의 핵심은 LED를 원하는 위치에 빠르고 정확하게 이동시키는 것에 있다. 따라서 Micro LED에서 가장 핵심 과제인 전사 기술에 대해 고민할 필요가 있으며, 전사 기술 중 하나인 Elastomer Stamp를 이용한 전사 기술에 대해서 분석해보고 정리해보았다.

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고분자 기판 상에 Rubber-stamp-printing 방법으로 제작한 유기박막 트랜지스터에 관한 연구 (Rubber-stamp-printed Poly (3-hexylthiophene) organic field-effect transistor on a plastic substrate with high mobility)

  • 김영훈;문대규;한정인
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2005년도 춘계학술대회 논문집 디스플레이 광소자 분야
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    • pp.164-168
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    • 2005
  • We report high performance poly (3-hexylthiophene) organic field-effect transistors fabricated on a plastic substrate. The polymer active channel layer was directly printed by the rubber stamp printing method with a pre-patterned elastomer stamp. As a result. organic transistors having average field-effect mobility of 0.079 $cm^2/Vs$ and on/off ratio of $10^4{\sim}10^5$ were realized on a plastic substrate. Also, through the investigation of the molecular ordering of rubber-stamp-printed poly (3-hexylthiophene) films using synchrotron grazing-incidence X-ray diffraction measurements, the films were found to have edge-on structure which is favorable in realizing high performance organic transistors.

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나노패턴 구현을 위한 $\mu$CP 공정기술 ($\mu$CP Process Technology for Nanopattern Implementation)

  • 조정대;신영재;김광영
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2003년도 춘계학술대회 논문집
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    • pp.624-627
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    • 2003
  • Microcontact printing (uCP) of alkanethiols on gold was the first representative of soft-lithography processes. This is an attempt to enhance the accuracy of classical to a precision comparable with optical lithography, creating a low-cost, large-area, and high-resolution patterning process. Microcontact printing relies on replication of a pattered PDMS stamp from a master to form an elastic stamp that can be inked with a SAM solution(monolayer -forming ink) using either immersion inking or contact inking. The inked PDMS stamp is then used to print a pattern that selectively protects the gold substrate during the subsequent etch.

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미소접촉인쇄 공정용 철형 PDMS 스템프 제작을 위한 Pyrex 7740 glass 표면의 연성영역 나노패터닝 (Ductile-Regime Nanopatterning on Pyrex 7740 Glass Surface and Its Application to the Fabrication of Positive-tone PDMS Stamp for Microcontact Printing (${\mu}CP$))

  • 김현일;윤성원;강충길
    • 한국소성가공학회:학술대회논문집
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    • 한국소성가공학회 2004년도 추계학술대회논문집
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    • pp.40-43
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    • 2004
  • Stamps for microcontact processing are fabricated by casting elastomer such as PDMS on a master with a negative of the desired pattern. After curing, the PDMS stamp is peeled away from the master and exposed to a solution of ink and then dried. Transfer of the ink from the PDMS stamp to the substrate occurs during a brief contact between stamp and substrate. Generally, negative-tone masters, which are used for making positive-tone PDMS stamps, are fabricated by using photolithographic technique. The shortcomings of photolithography are a relative high-cost process and require extensive processing time and heavy capital investment to build and maintain the fabrication facilities. The goal of this study is to fabricate a negative-tone master by using Nano-indenter based patterning technique. Various sizes of V-grooves and U-groove were fabricated by using the combination of nanoscratch and HF isotropic etching technique. An achieved negative-tone structure was used as a master in the PDMS replica molding process to fabricate a positive-tone PDMS stamp.

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나노템플레이트 표면처리를 통한 나노패턴이 형성된 PDMS 탄성 스탬프 몰드 제작 (Fabrication of Nanopatterned PDMS Elastic Stamp Mold Using Surface Treatment of Nanotemplate)

  • 박용민;서상현;서영호;김병희
    • 한국생산제조학회지
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    • 제24권1호
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    • pp.38-42
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    • 2015
  • Polydimethylsiloxane (PDMS) is a widely used material for replicating micro-structures because of its transparency, deformability, and easy fabrication. At the nanoscale, however, it is hard to fill a nanohole template with uncured PDMS. This paper introduces several simple methods by changing the surface energy of a nanohole template and PDMS elastomer for replicating 100nm-scale structures. In the case of template, pristine anodic aluminum oxide (AAO), hydrophobically treated AAO, and hydrophillically treated AAO are used. For the surface energy change of the PDMS elastomer, a hydrophilic additive and dilution solvent are added in the PDMS prepolymer. During the molding process, a simple casting method is used for all combinations of the treated template and modified PDMS. The nanostructured PDMS surface was investigated with a scanning electron microscope after the molding process for verification.