• 제목/요약/키워드: polymer gate dielectrics

검색결과 19건 처리시간 0.026초

Low voltage operated top gated polymer thin film transistors with a high capacitance polymer dielectric

  • Jung, Soon-Won;You, In-Kyu;Noh, Yong-Young
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2009년도 9th International Meeting on Information Display
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    • pp.907-909
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    • 2009
  • Low voltage operated top gated polymer transistors were fabricated with a high permittivity polymer, P(VDF-TrFE) and F8T2 as a gate dielectric and semiconducting layer, respectively. The operating voltage of transistors was effectively reduced under -10 V and typical threshold voltages were as low as -1 ~ -4 V with the reasonable charge carrier mobility of $10^{-3}cm^2$/Vs for the amorphous polymer. The large hysteresis in transfer curve was improved effectively by annealing at low temperature.

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Downscaling of self-aligned inkjet printed polymer thin film transistors

  • Noh, Yong-Young;Sirringhaus, Henning
    • 한국정보디스플레이학회:학술대회논문집
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    • 한국정보디스플레이학회 2008년도 International Meeting on Information Display
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    • pp.1564-1567
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    • 2008
  • We demonstrate here a self-aligned printing approach that allows downscaling of printed organic thin-film transistors to channel lengths of 100 - 400 nm. A perfected down-scaled polymer transistors (L= 200 nm) showing high transition frequency over 1.5 Mhz were realized with thin polymer dielectrics, controlling contact resistance, and minimizing overlap capacitance via self-aligned gate configuration.

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P(S-r-BCB-r-MMA) 게이트 절연체를 이용한 저전압 구동용 펜타센 유기박막트랜지스터 (Low-voltage Pentacene Field-Effect Transistors Based on P(S-r-BCB-r-MMA) Gate Dielectrics)

  • 구송희;;;류두열;이화성;조정호
    • 공업화학
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    • 제22권5호
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    • pp.551-554
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    • 2011
  • 유기박막트랜지스터 개발의 중요한 이슈 중 하나는 용액 공정이 가능한 저전압구동용 고분자 게이트 절연체의 개발이다. 따라서 본 연구에서는 고성능의 저전압구동이 가능한 유기박막트랜지스터를 위한 우수한 성능의 고분자 게이트 절연체 재료인 poly(styrene-r-benzocyclobutene-r-methyl methacrylate) (P(S-r-BCB-r-MMA))을 합성하였다. P(S-r-BCB-r-MMA)는 경화과정에서 부피의 변화가 거의 없기 때문에 우수한 절연특성을 가지는 매우 얇은 고분자 절연체를 제조할 수 있으며, 이는 주파수에 따른 전기용량 변화를 통해 확인할 수 있다. 펜타센 유기반도체를 기반으로 한 유기박막트랜지스터 소자를 제작하였을 경우 전계효과이동도 $0.25cm^2/Vs$, 문턱전압 -2 V, 점멸비 ${\sim}10^5$, 그리고 sub-threshold swing 400 mV/decade로 우수한 성능을 보인다. 본 연구에서 새롭게 소개된 P(S-r-BCB-r-MMA)는 유연 디스플레이와 같은 미래형 전자소자의 구현을 위한 게이트 절연체 소재로서 하나의 가능성을 제공할 것이다.

Electrical Properties of Bottom-Contact Organic Thin-Film-Transistors with Double Polymer Gate Dielectric Layers

  • Hyung, Gun-Woo;Park, Il-Houng;Choi, Hak-Bum;Hwang, Sun-Wook;Kim, Young-Kwan
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2008년도 하계학술대회 논문집 Vol.9
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    • pp.264-264
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    • 2008
  • We fabricated a pentacene thin-film transistor with a Polymer/$SiO_2$ Double Gate Dielectrics and obtained a device with better electrical characteristics. This device was found to have a field-effect mobility of $0.04cm^2$/Vs, a threshold voltage of -2V, an subthreshold slope of 1.3 V/decade, and an on/off current ratio of $10^7$.

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Organic Thin Film Transistors with Gate Dielectrics of Plasma Polymerized Styrene and Vinyl Acetate Thin Films

  • Lim, Jae-Sung;Shin, Paik-Kyun;Lee, Boong-Joo
    • Transactions on Electrical and Electronic Materials
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    • 제16권2호
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    • pp.95-98
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    • 2015
  • Organic polymer dielectric thin films of styrene and vinyl acetate were prepared by the plasma polymerization deposition technique and applied for the fabrication of an organic thin film transistor device. The structural properties of the plasma polymerized thin films were characterized by Fourier-transform infrared spectroscopy, X-ray diffraction, atomic force microscopy, and contact angle measurement. Investigation of the electrical properties of the plasma polymerized thin films was carried out by capacitance-voltage and current-voltage measurements. The organic thin film transistor device with gate dielectric of the plasma polymerized thin film revealed a low operation voltage of −10V and a low threshold voltage of −3V. It was confirmed that plasma polymerized thin films of styrene and vinyl acetate could be applied to functional organic thin film transistor devices as the gate dielectric.

High Performance of Printed CMOS Type Thin Film Transistor

  • You, In-Kyu;Jung, Soon-Won
    • 한국재료학회:학술대회논문집
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    • 한국재료학회 2010년도 춘계학술발표대회
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    • pp.17.2-17.2
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    • 2010
  • Printed electronics is an emerging technology to realize various microelectronic devices via a cost-effective method. Here we demonstrated a high performance of p-channel and n-channel top-gate/bottom contact polymer field-effect transistors (FETs), and applications to elementary organic complementary inverter and ring oscillator circuits by inkjet processing. We could obtained high field-effect mobility more than $0.4\;cm^2/Vs$ for both of p-channel and n-channel FETs, and successfully measured inkjet-printed polymer inverters. The performance of devices highly depends on the selection of dielectrics, printing condition and device architecture. Optimized CMOS ring oscillators with p-type and n-type polymer transistors showed as high as 50 kHz operation frequency. This research was financially supported by development of next generation RFID technology for item level applications (2008-F052-01) funded by the ministry of knowledge economy (MKE).

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Electrical Applications of OTFTs

  • Kim, Seong-Hyun;Koo, Jae-Bon;Lim, Sang-Chul;Ku, Chan-Hoi;Lee, Jung-Hun;Zyung, Tae-Hyoung
    • 한국고분자학회:학술대회논문집
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    • 한국고분자학회 2006년도 IUPAC International Symposium on Advanced Polymers for Emerging Technologies
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    • pp.170-170
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    • 2006
  • [ ${\pi}-conjugated$ ] organic and polymeric semiconductors are receiving considerable attention because of their suitability as an active layer for electronic devices. An organic inverter with a full swing and a high gain can be obtained through the good qualities of the transfer characteristics of organic thin-film transistors (OTFTs); for example, a low leakage current, a threshold voltage ($V_{th}$) close to 0 V, and a low sub-threshold swing. One of the most critical problems with traditional organic inverters is the high operating voltage, which is often greater than 20 V. The high operating voltage may result in not only high power consumption but also device instabilities such as hysteresis and a shift of $V_{th}$ during operation. In this paper, low-voltage and little-hysteresis pentacene OTFTs and inverters in conjunction with PEALD $Al_{2}O_{3}\;and\;ZrO_{2}$ as the gate dielectrics are demonstrated and the relationships between the transfer characteristics of OTFT and the voltage transfer characteristics (VTCs) of inverter are investigated.

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Non-volatile Molecular Memory using Nano-interfaced Organic Molecules in the Organic Field Effect Transistor

  • 이효영
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2009년도 제38회 동계학술대회 초록집
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    • pp.31-32
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    • 2010
  • In our previous reports [1-3], electron transport for the switching and memory devices using alkyl thiol-tethered Ru-terpyridine complex compounds with metal-insulator-metal crossbar structure has been presented. On the other hand, among organic memory devices, a memory based on the OFET is attractive because of its nondestructive readout and single transistor applications. Several attempts at nonvolatile organic memories involve electrets, which are chargeable dielectrics. However, these devices still do not sufficiently satisfy the criteria demanded in order to compete with other types of memory devices, and the electrets are generally limited to polymer materials. Until now, there is no report on nonvolatile organic electrets using nano-interfaced organic monomer layer as a dielectric material even though the use of organic monomer materials become important for the development of molecularly interfaced memory and logic elements. Furthermore, to increase a retention time for the nonvolatile organic memory device as well as to understand an intrinsic memory property, a molecular design of the organic materials is also getting important issue. In this presentation, we report on the OFET memory device built on a silicon wafer and based on films of pentacene and a SiO2 gate insulator that are separated by organic molecules which act as a gate dielectric. We proposed push-pull organic molecules (PPOM) containing triarylamine asan electron donating group (EDG), thiophene as a spacer, and malononitrile as an electron withdrawing group (EWG). The PPOM were designed to control charge transport by differences of the dihedral angles induced by a steric hindrance effect of side chainswithin the molecules. Therefore, we expect that these PPOM with potential energy barrier can save the charges which are transported to the nano-interface between the semiconductor and organic molecules used as the dielectrics. Finally, we also expect that the charges can be contributed to the memory capacity of the memory OFET device.[4]

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$SiN_x$/고분자 이중층 게이트 유전체를 가진 Zinc 산화물 박막 트랜지스터의 저온 공정에 관한 연구 (Study on the Low-temperature process of zinc oxide thin-film transistors with $SiN_x$/Polymer bilayer gate dielectrics)

  • 이호원;양진우;형건우;박재훈;구자룡;조이식;권상직;김우영;김영관
    • 한국응용과학기술학회지
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    • 제27권2호
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    • pp.137-143
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    • 2010
  • Oxide semiconductors Thin-film transistors are an exemplified one owing to its excellent ambient stability and optical transparency. In particular zinc oxide (ZnO) has been reported because It has stability in air, a high electron mobility, transparency and low light sensitivity, compared to any other materials. For this reasons, ZnO TFTs have been studied actively. Furthermore, we expected that would be satisfy the demands of flexible display in new generation. In order to do that, ZnO TFTs must be fabricated that flexible substrate can sustain operating temperature. So, In this paper we have studied low-temperature process of zinc oxide(ZnO) thin-film transistors (TFTs) based on silicon nitride ($SiN_x$)/cross-linked poly-vinylphenol (C-PVP) as gate dielectric. TFTs based on oxide fabricated by Low-temperature process were similar to electrical characteristics in comparison to conventional TFTs. These results were in comparison to device with $SiN_x$/low-temperature C-PVP or $SiN_x$/conventional C-PVP. The ZnO TFTs fabricated by low-temperature process exhibited a field-effect mobility of $0.205\;cm^2/Vs$, a thresholdvoltage of 13.56 V and an on/off ratio of $5.73{\times}10^6$. As a result, We applied experimental for flexible PET substrate and showed that can be used to ZnO TFTs for flexible application.