• Title/Summary/Keyword: Cell patterning

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Electro-optic characteristics of novel biased vertical alignment device using the polymerized reactive mesogen (광경화성 단분자를 이용한 새로운 수직배향 액정 디바이스의 전기 광학적 특성연구)

  • Kim, Dae-Hyun;Kim, Sung-Min;Cho, In-Young;Kim, Woo-Il;Kwon, Dong-Won;Son, Jong-Ho;Ryu, Jae-Jin;Kim, Kyeong-Hyeon;Lee, Seung-Hee
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.06a
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    • pp.269-270
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    • 2009
  • The biased vertical alignment (BVA) liquid crystal (LC) mode shows a has a distinct advantage of lower manufacture cost due to the elimination of a lithographic process step to form either ITO-patterning or protrusions on the color-filter substrates. However, those devices have complex voltage conditions which is the respective induce voltage on common electrode, pixel electrode and bias electrode when positive and negative frame. In order to overcome the complex voltage condition, the pretilt angles is controlled by photo polymerization of the UV-curable reactive mesogen (RM). According to our studies, voltages to the cell are critical to achieve an optimized surface-modified quality BVA (Q-BVA) mode which provides the well defined reorientation of the LCs with respect to an electric field.

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Electrical and Fluidic Characterization of Microelectrofluidic Bench Fabricated Using UV-curable Polymer (UV경화성 폴리머를 이용한 미소유체 통합접속 벤치 개발 및 전기/유체적 특성평가)

  • Youn, Se-Chan;Jin, Young-Hyun;Cho, Young-Ho
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.36 no.5
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    • pp.475-479
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    • 2012
  • We present a novel polymer fabrication process involving direct UV patterning of a hyperbranched polymer, AEO3000. Compared to PDMS, which is the most widely used polymer in bioMEMS devices, the present polymer has advantages with regard to electrode integration and fast fabrication. We designed a four-chip microelectrofluidic bench having three electrical pads and two fluidic I/O ports. We integrated a microfluidic mixer and a cell separator on the bench to characterize the interconnection performance and sample manipulation. Electrical and fluidic characterization of the microfluidic bench was performed. The measured electrical contact resistance was $0.75{\pm}0.44{\Omega}$, which is small enough for electrical applications, and the pressure drop was 8.3 kPa, which was 39.3% of the value in the tubing method. By performing yeast mixing and a separation test in the integrated module on the bench, we successfully showed that the interconnected chips could be used for bio-sample manipulation.