• Title/Summary/Keyword: Transparent TFT

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Oxide TFT Structure Affecting the Device Performance

  • KoPark, Sang-Hee;Cho, Doo-Hee;Hwang, Chi-Sun;Ryu, Min-Ki;Yang, Shin-Hyuk;Byun, Chun-Won;Yoon, Sung-Min;Cheong, Woo-Seok;Cho, Kyoung-Ik
    • 한국정보디스플레이학회:학술대회논문집
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    • 2009.10a
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    • pp.385-388
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    • 2009
  • We have investigated the effect of the device structure on the performance of polycrystalline ZnO TFT and amorphous AZTO TFT with top gate and bottom gate structure. While the mobility of both TFTs showed relatively similar value in a top and bottom gate structure, bias stability was quite different depending on the device structure. Top gate TFT showed much less Vth shift under positive bias stress compared to that of bottom gate TFT. We attributed this different behavior to the defects formation on the gate insulator induced by energetic bombardment during the active layer deposition in a bottom gate TFT. We suggest the top gate oxide TFT would show more stable behavior under the Vgs bias.

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Top gate ZnO-TFT driving AM-OLED fabricated on a plastic substrate

  • Hwang, Chi-Sun;Kopark, Sang-Hee;Byun, Chun-Won;Ryu, Min-Ki;Yang, Shin-Hyuk;Lee, Jeong-Ik;Chung, Sung-Mook;Kim, Gi-Heon;Kang, Seung-Youl;Chu, Hye-Yong
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.1466-1469
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    • 2008
  • We have fabricated 2.5 inch QQCIF AM-OLED panel driven by ZnO-TFT on a plastic substrate for the first time. The number of photo mask for the whole panel process was 5 and the TFT structure was top gate with active protection layer as a first gate insulator. Optimizing the process for the substrate buffer layer, active layer, ZnO protection layer, and gate insulator was key factor to achieve the TFT performance enough to drive OLED. The ZnO TFT has mobility of $5.4\;cm^2/V.s$, turn on voltage of -6.8 V, sub-threshold swing of 0.39 V/decade, and on/off ratio of $1.7{\times}10^9$. Although whole process temperature is below $150^{\circ}C$ to be suitable for the plastic substrate, performance of ZnO TFT was comparable to that fabricated at higher temperature on the glass.

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Challenge to Future Displays: Transparent AM-OLED driven by PEALD grown ZnO TFT

  • Ko Park, Sang-Hee;Hwang, Chi-Sun;Byun, Chun-Won;Ryu, Min-Ki;Lee, Jeong-Ik;Chu, Hye-Yong;Cho, Kyoung-Ik;Chae, Jang-Youl;Han, Se-Jin
    • 한국정보디스플레이학회:학술대회논문집
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    • 2007.08b
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    • pp.1249-1252
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    • 2007
  • We have fabricated 3.5” transparent AM-OLED panel driven by PEALD grown ZnO TFT. The performance of ZnO thin film transistor was improved by adapting top gate structure, protection layer for ZnO from photolithography process, optimizing temperature and plasma power of ZnO growth process. The ZnO-TFT has a mobility of $8.9cm^2/V.s$, a subthreshold swing of 0.95V, and an on/off ratio of $10^7$.

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High-Performance, Fully-Transparent and Top-Gated Oxide Thin-Film Transistor with High-k Gate Dielectric

  • Hwang, Yeong-Hyeon;Cho, Won-Ju
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.276-276
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    • 2014
  • High-performance, fully-transparent, and top-gated oxide thin-film transistor (TFT) was successfully fabricated with Ta2O5 high-k gate dielectric on a glass substrate. Through a self-passivation with the gate dielectric and top electrode, the top-gated oxide TFT was not affected from H2O and O2 causing the electrical instability. Heat-treated InSnO (ITO) was used as the top and source/drain electrode with a low resistance and a transparent property in visible region. A InGaZnO (IGZO) thin-film was used as a active channel with a broad optical bandgap of 3.72 eV and transparent property. In addition, using a X-ray diffraction, amorphous phase of IGZO thin-film was observed until it was heat-treated at 500 oC. The fabricated device was demonstrated that an applied electric field efficiently controlled electron transfer in the IGZO active channel using the Ta2O5 gate dielectric. With the transparent ITO electrodes and IGZO active channel, the fabricated oxide TFT on a glass substrate showed optical transparency and high carrier mobility. These results expected that the top-gated oxide TFT with the high-k gate dielectric accelerates the realization of presence of fully-transparent electronics.

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Electrically Stable Transparent Complementary Inverter with Organic-inorganic Nano-hybrid Dielectrics

  • Oh, Min-Suk;Lee, Ki-Moon;Lee, Kwang-H.;Cha, Sung-Hoon;Lee, Byoung-H.;Sung, Myung-M.;Im, Seong-Il
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.620-621
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    • 2008
  • Transparent electronics has been one of the key terminologies forecasting the ubiquitous technology era. Several researchers have thus extensively developed transparent oxide-based thin-film transistors (TFTs) on glass and plastic substrates although in general high voltage operating devices have been mainly studied considering transparent display drivers. However, low voltage operating oxide TFTs with transparent electrodes are very necessary if we are aiming at logic circuit applications, for which transparent complementary or one-type channel inverters are required. The most effective and low power consuming inverter should be a form of complementary p-channel and n-channel transistors but real application of those complementary TFT inverters also requires electrical- and even photo-stabilities. Since p-type oxide TFTs have not been developed yet, we previously adopted organic pentacene TFTs for the p-channel while ZnO TFTs were chosen for n-channel on sputter-deposited $AlO_x$ film. As a result, decent inverting behavior was achieved but some electrical gate instability was unavoidable at the ZnO/$AlO_x$ channel interface. Here, considering such gate instability issues we have designed a unique transparent complementary TFT (CTFTs) inverter structure with top n-ZnO channel and bottom p-pentacene channel based on 12 nm-thin nano-oxide/self assembled monolayer laminated dielectric, which has a large dielectric strength comparable to that of thin film amorphous $Al_2O_3$. Our transparent CTFT inverter well operate under 3 V, demonstrating a maximum voltage gain of ~20, good electrical and even photoelectric stabilities. The device transmittance was over 60 % and this type of transparent inverter has never been reported, to the best of our limited knowledge.

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AMOLED Panel Using Transparent Bottom Gate IGZO TFT (Bottom Gate IGZO 박막트랜지스터를 이용한 투명 AMOLED 패널 제작)

  • Cho, D.H.;Yang, S.H.;Byun, C.W.;Shin, J.H.;Lee, J.I.;Park, E.S.;Kwon, O.S.;Hwang, C.S.;Chu, H.Y.;Cho, K.I.
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2008.04a
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    • pp.39-40
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    • 2008
  • We have examined post-annealing and passivation for the transparent bottom gate IGZO TFT having an inverse co-planar structure. The oxygen-vacuum two step annealing enhanced the field effect mobility up to 18 $cm^2$/Vsandthesub-threshold swing down to 0.2V/dec. However, the hysterysis and the bias stability problems could not be solved just by post-annealing. Thus, we have passivated the bottom gate IGZO TFTs with organic and inorganic materials. $Ga_2O_3$, $Al_2O_3$, $SiO_2$ and some polymer materials were effective materials for passivations. The hysterysis and the stability of the TFTs were remarkably improved by the passivations. We have manufactured the AMOLED panel with the transparent bottom gate IGZO TFT array successfully.

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Novel Oxide Thin Film Transistors for Transparent AMOLED

  • Cho, Doo-Hee;Yang, Shin-Hyuk;Byun, Chun-Won;Lee, Jeong-Ik;Hwang, Chi-Sun;Kopark, Sang-Hee;Chu, Hye-Yong;Cho, Kyoung-Ik
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.1101-1104
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    • 2008
  • We have fabricated the transparent TFTs using new oxide material (AZTO: Al-doped zinc tin oxide) as an active layer. The AZTO TFT showed good performance without post-annealing. The electrical characteristics were improved by the post-annealing up to $300^{\circ}C$. The AZTO TFTs exhibited a mobility of $8{\sim}12\;cm^2/Vs$, a sub-threshold swing of 0.2~0.6 V/dec, and an on/off ratio of more than $10^9$.

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Effect of deposition method of source/drain electrode on a top gate ZnO TFT Performance

  • Kopark, Sang-Hee;Hwang, Chi-Sun;Yang, Shin-Hyuk;Yun, Young-Sun;Park, Byung-Chang
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.254-257
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    • 2008
  • We have investigated the effect of source/drain electrode deposition method on a performance of top gate structured ZnO TFT performance. TFT using S/D of ITO film, consisted of bi-layer which deposited by ion beam assisted sputtering at the initial stage then deposited by DC magnetron sputtering, showed better performance compared to that using S/D of ITO deposited by just DC magnetron sputtering. Two ITO films exhibited different grain shapes and these resulted in different etching properties. We also suspect that charge trapping on the glass substrate (back channel) during the ITO film deposition may influence the characteristics of top gate structured ZnO TFT.

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투명 산화물 트랜지스터

  • Park, Sang-Hui;Hwang, Chi-Seon;Jo, Du-Hui;Yu, Min-Gi;Yun, Seong-Min;Jeong, U-Seok;Byeon, Chun-Won;Yang, Sin-Hyeok;Jo, Gyeong-Ik;Gwon, O-Sang;Park, Eun-Suk
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2009.05a
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    • pp.13.1-13.1
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    • 2009
  • Transparent electronics has attracted many interests, for it can open new applications for consumer electronics, transportation, business, and military. Among them, display backplane, thin film transistor (TFT) array would be the most attractive application. Many researchers have been investigating oxide semiconductors for transparent channel material of TFT since the report for transparent amorphous oxide semiconductor (TAOS) TFT by Hosono group and ZnO TFT by Wager group. Especially, oxide TFTs have been intensively investigated during a couple of years since the first demonstration of ZnO-TFT driving AM-OLED. Many papers regarding the fabrication and performance of oxide TFTs, and active matrix display driven by oxide TFTs have been reported. Now lots of people have confidence in the competitiveness of oxide TFTs for the backplane of AM-Display. Especially, high mobility, uniformity, fairly good stability, and low cost process make oxide TFTs applied even to a large size AM-OLED. Last year, Samsung mobile display, former SID, reported 12" AM-OLED driven by IZGO-TFT and it seems that the remained issue for the mass production is the bias temperature stability. Here, we will introduce the application of oxide TFT and important issue for oxide TFT to be used for the direct printing.

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A Level Shifter Using Aluminum-Doped Zinc Tin Oxide Thin Film Transistors with Negative Threshold Voltages

  • Hwang, Tong-Hun;Yang, Ik-Seok;Kim, Kang-Nam;Cho, Doo-Hee;KoPark, Sang-Hee;Hwang, Chi-Sun;Byun, Chun-Won;Kwon, Oh-Kyong
    • 한국정보디스플레이학회:학술대회논문집
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    • 2009.10a
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    • pp.464-465
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    • 2009
  • A new level shifter using n-channel aluminum-doped zinc tin oxide (AZTO) thin film transistors (TFTs) was proposed to integrate driving circuits on qVGA panels for mobile display applications. The circuit used positive feedback loop to overcome limitations of circuits designed with oxide TFTs which is depletion mode n-channel TFTs. The measured results shows that the proposed circuit shifts 10 V input voltage to 20 V output voltage and its power consumption is 0.46 mW when the supply voltage is 20 V and the operating frequency is 10 kHz.

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