• Title/Summary/Keyword: organic phototransistor

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High Performance Organic Phototransistors Based on Soluble Pentacene (용액형 유기반도체를 이용한 고성능 포토트랜지스터)

  • Kim, Y.H.;Lee, Y.U.;Han, J.I.;Han, S.M.;Han, M.K.
    • Proceedings of the KIEE Conference
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    • 2007.11a
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    • pp.79-80
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    • 2007
  • A high performance organic phototransistor with dynamic range of 120 dB is demonstrated by employing soluble pentacene as a photo-sensing layer. The organic phototransistor used suspended source/drain (SSD) electrode structure, which provides a dark current level of ${\sim}10^{-14}$ A at positive gate bias. Under a steady-state illumination, the organic phototransistor exhibited a current modulation of $10^6$ compared to dark to give a dynamic range of 120 dB. These results suggest that the organic phototransistor based on TIPS pentacene can be a new premising candidate for low-cost and high-performance photo-sensing element for digital imaging applications.

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New Semiconducting Multi-branched Conjugated Molecules Bearing 3,4-Ethylene-dioxythiophene-based Thiophenyl Moieties for Organic Field Effect Transistor

  • Kim, Dae-Chul;Lee, Tae-Wan;Lee, Jung-Eun;Kim, Kyung-Hwan;Cho, Min-Ju;Choi, Dong-Hoon;Han, Yoon-Deok;Cho, Mi-Yeon;Joo, Jin-Soo
    • Macromolecular Research
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    • v.17 no.7
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    • pp.491-498
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    • 2009
  • New $\pi$-conjugated multi-branched molecules were synthesized through the Homer-Emmons reaction using alkyl-substituted, 3,4-ethylenedioxythiophene-based, thiophenyl aldehydes and octaethyl benzene-l,2,4,5-tetrayltetrakis(methylene) tetraphosphonate as the core unit; these molecules have all been fully characterized. The two multi-branched conjugated molecules exhibited excellent solubility in common organic solvents and good self-film forming properties. The semiconducting properties of these multi-branched molecules were also evaluated in organic field-effect transistors (OFET). With octyltrichlorosilane (OTS) treatment of the surface of the $SiO_2$ gate insulator, two of the crystalline conjugated molecules, 7 and 8, exhibited carrier mobilities as high as $2.4({\pm}0.5){\times}10^{-3}$ and $1.3({\pm}0.5){\times}10^{-3}cm^2V^{-1}s^{-1}$, respectively. The mobility enhancement of OFET by light irradiation ($\lambda$ = 436 nm) supported the promising photo-controlled switching behavior for the drain current of the device.