• Title/Summary/Keyword: resistive touch panel

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An Implementation of Driving Circuit for Resistive Touch Panel (저항막식 터치 패널의 구동회로 제작)

  • Han, Hyung-Seok
    • Journal of The Institute of Information and Telecommunication Facilities Engineering
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    • v.8 no.1
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    • pp.36-39
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    • 2009
  • In this paper, we propose a 4-wire type driving circuit for resistive touch panel which was manufactured at the lab. The circuit is designed by using the touch panel controller ADS7846 and AVR microcontroller board. The test result shows that the designed circuit can give and transmit the position information of touch panel to the computer.

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Transparent Conductive AGZO-PET Film by Roll-to-Roll Sputter and Its Application to Resistive Type Touch Panel Fabrication

  • Lee, Sang-Ju;Lee, Sang-Mun;Lee, Yoon-Su;Kim, Tae-Hoon;Park, Lee-Soon
    • 한국정보디스플레이학회:학술대회논문집
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    • 2009.10a
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    • pp.1535-1537
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    • 2009
  • High performance resistive type touch panel was fabricated on flexible polyethylene terephthalate (PET) substrates coated with Al- and Ga-codoped ZnO (AGZO) films. The AGZO films were deposited by roll-to-roll direct current magnetron sputter at room temperature. The AGZO thin films on PET substrates showed high transparency (> 85 % at 550 nm) and low sheet resistance (450 ${\Omega}$/sq.). These values were similar to those of commercial ITO films used for resistive type touch panel.

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Preparation of Conductive Leather Gloves for Operating Capacitive Touch Screen Displays (정전용량방식 터치스크린에 작동하는 전도성 가죽장갑 소재의 제조)

  • Hong, Kyung Hwa
    • Fashion & Textile Research Journal
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    • v.14 no.6
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    • pp.1018-1023
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    • 2012
  • Smartphone is integrated into the daily lives of all types of people not even young generation. A touch screen display is a primary input device of a smart phone, a tablet computer, etc. While there are many tough technologies in existence, resistive and capacitive are dominant and currently lead the touch screen panel industry. And a capacitive touch screen panel widely used in smart phones is coated with a material that stores electrical charges. In this study, we tried to manufacture gloves produced with electro-conducting leather as a tool to operate a touch panel screen. Therefore, electrically conductive materials, Polyaniline(PANI), Poly(3,4-ethylenedioxythiophene) (PEDOT), and Carbon nanotubes (CNT) were applied to the surface of leather to be used as a touching operator for capacitive touch screen panel. The leather samples were treated by simple painting method; firstly, they were painted with aqueous solution containing each of the electrically conductive materials and then dried. This cycle was repeated three times. Consequently, the treated leather samples showed electrical conductivity and reasonable working performance to the capacitive touch screen. And, PANI showed the best performance and highest electrical conductivity, and then PEDOT and, CNT in decreasing order. This is because the solubilities of PANI and PEDOT show higher than dispersibility of CNT. Thus, the concentration of conducting polymers was greater than that of CNT in the treating solutions.

Process Optimization of ITO Film on PC Substrate Deposited by In-line Sputtering Method for a Resistive-type Touch Panel (인라인 스퍼터링에 의한 저항막 방식 터치패널용 ITO 기판 제조공정 최적화 기술)

  • Ahn, M.H.;Cho, E.S.;Kwon, S.J.
    • Journal of the Korean Vacuum Society
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    • v.18 no.6
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    • pp.440-446
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    • 2009
  • Indium tin oxide(ITO) substrate is one of the key components of the touch panel and its sputtering process is dependent on the characteristics of various touch panel, such as driving type, size of panel, and the intended use. In this study, we optimized the sputtering condition of ITO film on polycarbonate(PC) by using in-line sputtering method for the application to resistive type touch panel. We varied the $O_2$/Ar gas ratio, sputtering power, pressure and moving speed of substrate to deposit ITO films at room temperature with the base vacuum of $1{\times}10^{-6}\;torr$. The sheet resistance and its uniformity, the transmittance, the thickness of the ITO film on PC substrate are investigated and analyzed. The optimized process parameters are as follows : the sheet resistance is $500{\pm}50\;{\Omega}$/□, the uniformity of sheet resistance is lower than 10%, the transmittance is higher than 87 % at 550nm, and the thickness is about 120~250. The optimized deposition conditions by in-line sputtering method can be applied to the actual mass production for the ITO film manufacturing technology.

Low resistive multi-layer electrode for touch panel adopted with high performance stylus pen (저저항 멀티레이어 전극기반 고성능 스타일러스펜 일체형 터치패널)

  • Hong, Chan-Hwa;Lee, Jun-Min;Choe, Ho-Yeol;Kim, Yeong-Hoe;Gwak, Yeong-Jin;Jeong, U-Seok
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2018.06a
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    • pp.42.1-42.1
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    • 2018
  • 정전용량방식 터치스크린패널은 모바일에서 차량용 디스플레이에 이르기까지 휴대용 전자장치를 위한 직관적인 사용자 인터페이스 덕분에 최근 몇 년간 관심이 집중 되었다. 본 연구에서는 우수한 성형성과 정확성 및 고감도 터치패널 제작을 위해 Ionized Physical Vapor Deposition (IPVD)시스템을 이용하여 멀티레이어(Oxide/Metal/Oxide)의 투명전극을 형성 하였다. 멀티레이어 전극은 5.1 ohm/sq의 면저항과 89.5%의 투과율을 나타내며, 높은 신뢰성 및 접촉력의 특성을 나타내는 것을 확인 하였다. 이를 통해, 기존의 패턴크기보다 작은 3.8mm pitch 패턴의 15인치 GFF타입 터치패널을 성공적으로 제작 하였으며, 터치센서는 우수한 선형성, 정확성 및 고감도 스타일러스펜 (직경=1mm)의 멀티터치를 구현 하였다.

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A Study on Adhesion and Electro-optical Properties of ITO Films Deposited on Flexible PET Substrates with Deposition of SiO2 Buffer Layers (PET 기판 위에 SiO2 버퍼층 증착에 따른 ITO 박막의 부착 및 전기적 광학적 특성 연구)

  • Kang, Ja-Youn;Kim, Dong-Won;Cho, Kyu-Il;Woo, Byung-Il;Yun, Hwan-Jun
    • Journal of the Korean institute of surface engineering
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    • v.42 no.1
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    • pp.21-25
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    • 2009
  • Using an evaporation system, $SiO_2$ was deposited as a buffer layer between a PET substrate and a ITO layer and then ITO/$SiO_2$/PET layers were annealed for 1.5 hours at the temperature of $180^{\circ}C$. Adhesion and electro-optical properties of ITO films were studied with thickness variance of a $SiO_2$ buffer layer. As a result of introduction of the $SiO_2$ buffer layer, sheet resistance and resistivity increased and a ITO film with optimum sheet resistance ($529.3{\Omega}/square$) for an upper ITO film of resistive type touch panel could be obtained when $SiO_2$ of $50{\AA}$ was deposited. And it was found that ITO films with $SiO_2$ buffer layer have higher transmittance of $88{\sim}90%$ at 550 nm wavelength than ITO films with no buffer layers and the transmittance was enhanced as $SiO_2$ thickness increased from $50{\AA}$ to $100{\AA}$. Adhesion property of ITO films with $SiO_2$ buffer layers became better than ITO films with no buffer layers and this property was independent of $SiO_2$ thickness variance ($50{\sim}100{\AA}$). By depositing a $SiO_2$ buffer layer of $50{\AA}$ on the PET substrate and sputtering a ITO thin film on the layer, a ITO film with enhanced adhesion, electro-optical properties could be obtained.