• Title/Summary/Keyword: indium zinc oxide

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ITZO 박막의 전자적 및 광학적 특성

  • Lee, Seon-Yeong;Denny, Yus Rama;Gang, Hui-Jae;Heo, Seong;Jeong, Jae-Gwan;Lee, Jae-Cheol;Chae, Hong-Cheol
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.324-324
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    • 2012
  • 투명전도체(Transparent Conducting Oxides: TCOs)는 일반적으로 면저항이 $103{\Omega}/sq$ 이하로 전기가 잘 통하며, 가시광선영역인 380~780 nm에서의 투과율이 80% 이상이고, 3.2eV 이상의 밴드갭을 가지는 재료로써, 전기전도도와 가시광선영역에서 투과성이 높아 전기적, 광학적 재료로 관심을 받아 다년간 연구대상이 되어오고 있다. 현재 가장 널리 사용되고 있는 투명전도체(Transparent Conducting Oxides: TCOs) 소재로는 Indium Tin Oxide (ITO)가 가장 각광받고 있지만, Indium의 가격상승과 박막의 열처리를 통해 저항이 증가하는 단점을 가지고 있어 이를 대체 할 새로운 소재 개발이 필요한 상황이다. 그러므로 투명전도체 소재 개발에 있어서 가장 중요한 연구과제는 Indium Tin Oxide(ITO)의 단점을 개선시키고 안정된 고농도의 In-Zn-Sn-O(ITZO) 박막을 성장시키는 것이다. 본 연구에서는 RF스퍼터링법에 의하여 Si wafer에 In-Zn-Sn-O(IZTO)를 $350{\AA}$ 만큼 증착시키고, 1시간 동안 $300^{\circ}C$, $350^{\circ}C$, $400^{\circ}C$로 각각 열처리 하였다. 박막의 전자적, 광학적 특성은 XPS(X-ray Photoelectron Spectroscopy), REELS(Reflection Electron Energy Loss Spectroscopy)를 이용하여 연구하였다. XPS측정결과, ITZO박막은 In-O, Sn-O and Zn-O의 결합을 가지고 있고, 박막의 열처리를 통해 $400^{\circ}C$에서 Zn2p의 피크가 가장 크게 나타나는 반면 In3d와 Sn3d는 열처리를 했을 때가 Room Temperature에서 보다 피크가 작아지는 것을 확인하였다. 이는 $400^{\circ}C$에서 Zn가 표면에 편석됨을 나타낸다. 그리고 REELS를 이용해 Ep=1500 eV에서의 밴드갭을 얻어보면, 밴드갭은 $3.25{\pm}0.05eV$로 온도에 크게 변화하지 않았다. 또한 QUEELS -Simulation에 의한 광학적 특성 분석 결과, 가시광선영역인 380nm~780nm에서의 투과율이 83%이상으로 투명전자소자로의 응용이 가능하다는 것을 보여주었다.

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The Effect of Zn/Sn Different Raito of InZnSnO Thin Films Prepared by RF Magnetron Sputtering (RF 마그네트론 스퍼터를 사용하여 증착한 IZTO 박막의 Zn/Sn 비율에 따른 효과)

  • Kim, Ki Hwan;Putri, Maryane;Koo, Chang Young;Lee, Jung-A;Kim, Jeong-Joo;Lee, Hee Young
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.26 no.8
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    • pp.591-596
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    • 2013
  • Indium Zinc Tin Oxide (IZTO) thin films were developed as an alternative to Indium Tin Oxide (ITO) thin films. ITO material which has been acknowledged with its low resistivity and optical transparency of 85-90% has been used as major transparent conducting oxide (TCO) materials. However, due to the limited source, high price, and instability problems at high temperature of indium, many researches has been focused on indium-saving TCO materials. Mason Group of Northwestern University was reported to expand the solubility limit up to 40% by co-doping with 1:1 ratio of $Zn^{+2}$ and $Sn^{+4}$ ions. In this study, the properties of IZTO thin films corresponding to Zn/Sn different ratio were investigated. In addition, the effect of substrate temperature variable to the structural, optical and electrical properties of IZTO thin films was investigated.

Experimental Study on Fabrication of AZO Transparent Electrode for Organic Solar Cell Using Selective Low-Temperature Atomic Layer Deposition (저온 선택적 원자층 증착공정을 이용한 유기태양전지용 AZO 투명전극 제조에 관한 실험적 연구)

  • Kim, Ki-Cheol;Song, Gen-Soo;Kim, Hyung-Tae;Yoo, Kyung-Hoon;Kang, Jeong-Jin;Hwang, Jun-Young;Lee, Sang-Ho;Kang, Kyung-Tae;Kang, Heui-Seok;Cho, Young-June
    • Transactions of the Korean Society of Mechanical Engineers B
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    • v.37 no.6
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    • pp.577-582
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    • 2013
  • AZO (aluminum-doped zinc oxide) is one of the best candidate materials to replace ITO (indium tin oxide) for TCOs (transparent conductive oxides) used in flat panel displays, organic light-emitting diodes (OLEDs), and organic solar cells (OSCs). In the present study, to apply an AZO thin film to the transparent electrode of an organic solar cell, a low-temperature selective atomic layer deposition (ALD) process was adopted to deposit an AZO thin film on a flexible poly-ethylene-naphthalate (PEN) substrate. The reactive gases for the ALD process were di-ethyl-zinc (DEZ) and tri-methyl-aluminum (TMA) as precursors and H2O as an oxidant. The structural, electrical, and optical characteristics of the AZO thin film were evaluated. From the measured results of the electrical and optical characteristics of the AZO thin films deposited on the PEN substrates by ALD, it was shown that the AZO thin film appeared to be comparable to a commercially used ITO thin film, which confirmed the feasibility of AZO as a TCO for flexible organic solar cells in the near future.

Advances in Zinc Oxide-Based Devices for Active Matrix Displays

  • Mann, Mark;Li, Flora;Kiani, Ahmed;Paul, Debjani;Flewitt, Andrew;Milne, William;Dutson, James;Wakeham, Steve J.;Thwaites, Mike
    • 한국정보디스플레이학회:학술대회논문집
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    • 2009.10a
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    • pp.389-392
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    • 2009
  • Metal oxides have been proposed as an alternative channel material to hydrogenated amorphous silicon in thin film transistors (TFTs) because their higher mobility and stability make them suitable for transistor active layers. Thin films of indium zinc oxide (IZO) were deposited using a High Target Utilization Sputtering (HiTUS) system on various dielectrics, some of which were also deposited with the HiTUS. Investigations into bottom-gated IZO TFTs have found mobilities of 8 $cm^2V\;^1s^{-1}$ and switching ratios of $10^6$. There is a variation in the threshold voltage dependent on both oxygen concentration, and dielectric choice. Silica, alumina and silicon nitride produced stable TFTs, whilst hafnia was found to break down as a result of the IZO.

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Transparent ITO/Ag/i-ZnO Multilayer Thin Film enhances Lowing Sheet Resistance

  • Kim, Sungyoung;Kim, Sangbo;Heo, Jaeseok;Cho, Eou-Sik;Kwon, Sang Jik
    • Proceedings of the Korean Vacuum Society Conference
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    • 2015.08a
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    • pp.187-187
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    • 2015
  • The past thirty years have seen increasingly rapid advances in the field of Indium Tin Oxide (ITO) transparent thin film.[1] However, a major problem with this ITO thin film application is high cost compared with other transparent thin film materials.[2] So far, in order to overcome this disadvantage, we show a transparent ITO/Ag/i-ZnO multilayer thin film electrode can be the solution. In comparison with using amount of ITO as a transparent conducting material, intrinsic-Zinc-Oxide (i-ZnO) based on ITO/Ag/i-ZnO multilayer thin film showed cost-effective and it has not only highly transparent but also conductive properties. The aim of this research has therefore been to try and establish how ITO/Ag/i-ZnO multilayer thin film would be more effective than ITO thin film. Herein, we report ITO/Ag/i-ZnO multilayer thin film properties by using optical spectroscopic method and measuring sheet resistance. At a certain total thickness of thin film, sheet resistance of ITO/Ag/i-ZnO multilayer was drastically decreased than ITO layer approximately $40{\Omega}/{\square}$ at same visible light transmittance.(minimal point $5.2{\Omega}/{\square}$). Tendency, which shows lowly sheet resistive in a certain transmittance, has been observed, hence, it should be suitable for transparent electrode device.

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Properties of Indium Zinc Oxide Thin Films Prepared by Pulsed Laser Deposition (펄스레이저증착법으로 증착한 Indium Zinc Oxide 박막의 물성)

  • Choi, Hak-Soon;Jeong, Il-Kyo;Shin, Mun-Soo;Kim, Heon-Oh;Kim, Yong-Soo
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.24 no.7
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    • pp.537-542
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    • 2011
  • Recently, n-InZnO/p-CuO oxide diode has attracted great attention due to possible application for selector device of 3-dimensional cross-point resistive memory structures. To investigate the detailed properties of InZnO (IZO), we have deposited IZO films on the fused quartz substrate using PLD (pulsed laser deposition) method at oxygen pressure of 1~100 mTorr and substrate temperature of RT$\sim600^{\circ}C$. The influence of oxygen pressure and substrate temperature on structural, optical and electrical of IZO films is analyzed using XRD (x-ray diffraction), SEM (scanning electron microscopy), UV-Vis spectrophotometry, spectroscopic ellipsometry (SE) and hall measurements. The XRD results shows that the deposited thin films are polycrystalline over $300^{\circ}C$ of substrate temperature independent of oxygen pressure. The resistivity of films was increased as oxygen pressure and substrate temperature decrease. The thickness and optical constants of the deposited films measured with UV-Vis spectrophotometer were also compared with those of broken SEM and SE results.

Highly stable Zn-In-Sn-O TFTs for the Application of AM-OLED Display

  • Ryu, Min-Ki;KoPark, Sang-Hee;Yang, Shin-Hyuk;Cheong, Woo-Seok;Byun, Chun-Won;Chung, Sung-Mook;Kwon, Oh-Sang;Park, Eun-Suk;Jeong, Jae-Kyeong;Cho, Kyoung-Ik;Cho, Doo-Hee;Lee, Jeong-Ik;Hwang, Chi-Sun
    • 한국정보디스플레이학회:학술대회논문집
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    • 2009.10a
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    • pp.330-332
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    • 2009
  • Highly stable bottom gate thin film transistors(TFTs) with a zinc indium tin oxide(Zn-In-Sn-O:ZITO) channel layer have been fabricated by rf-magnetron co-sputtering using a indium tin oxide(ITO:90/10), a tin oxide and a zinc oxide targets. The ZITO TFT (W/L=$40{\mu}m/20{\mu}m$) has a mobility of 24.6 $cm^2$/V.s, a subthreshold swing of 0.12V/dec., a turn-on voltage of -0.4V and an on/off ratio of >$10^9$. When gate field of $1.8{\times}10^5$ V/cm was applied with source-drain current of $3{\mu}A$ at $60^{\circ}C$, the threshold voltage shift was ~0.18 V after 135 hours. We fabricated AM-OLED driven by highly stable bottom gate Zn-In-Sn-O TFT array.

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Effect of Thin-Film Thickness on Electrical Performance of Indium-Zinc-Oxide Transistors Fabricated by Solution Process (용액 공정을 이용한 IZO 트랜지스터의 전기적 성능에 대한 박막 두께의 영향)

  • Kim, Han-Sang;Kyung, Dong-Gu;Kim, Sung-Jin
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.30 no.8
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    • pp.469-473
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    • 2017
  • We investigated the effect of different thin-film thicknesses (25, 30, and 40 nm) on the electrical performance of solution-processed indium-zinc-oxide (IZO) thin-film transistors (TFTs). The structural properties of the IZO thin films were investigated by atomic force microscopy (AFM). AFM images revealed that the IZO thin films with thicknesses of 25 and 40 nm exhibit an uneven distribution of grains, which deforms the thin film and degrades the performance of the IZO TFT. Further, the IZO thin film with a thickness of 30 nm exhibits a homogeneous and smooth surface with a low RMS roughness of 1.88 nm. The IZO TFTs with the 30-nm-thick IZO film exhibit excellent results, with a field-effect mobility of $3.0({\pm}0.2)cm^2/Vs$, high Ion/Ioff ratio of $1.1{\times}10^7$, threshold voltage of $0.4({\pm}0.1)V$, and subthreshold swing of $0.7({\pm}0.01)V/dec$. The optimization of oxide semiconductor thickness through analysis of the surface morphologies can thus contribute to the development of oxide TFT manufacturing technology.

다양한 기판에 FTS(Facing Target Sputtering)방법으로 제작된 AZO박막의 광전 특성에 관한 연구

  • ;Seo, Seong-Bo;Kim, Hwa-Min
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.08a
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    • pp.176.1-176.1
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    • 2013
  • TCO (Transparent Conductive Oxide)는 투명 전도성 산화물 높은 투과율과 낮은 비저항 가지고 있어서 최근 사용된 평판디스플레이 LCD(liquid crystal display), PDP (Plasma Display Panel), OLED (Organic Light Emitting Display) 에 많이 사용되고 있다. 현재 양산화 되고 있는 ITO (Indium tin Oxide)는 좋은 전도율과 높은 투과율로서 가장 많이 쓰인다. 하지만 ITO중에 Indium Oxide는 치명적인 독성을 가지고 있으며 In의 저장량이 적어 시간이 갈수록 가격이 비싸지는 등 여러 가지 단점을 가지고 있다. 그것에 비해 AZO (aluminum-doped zinc oxide)는 독성이 없고 가격도 저렴하여 ITO의 단점을 보완 할 수 있는 물질이다. AZO 증착은 현재 sol-gel, CVD(chemical vapor deposition), Sputter, 등으로 사용되고 있으며 현재 많은 연구가 진행되고 있다. 본 실험에서는 PEN 기판을 사용하였으며, 플라즈마의 열적 데미지로 인한 기판의 변형 등 여러 가지 문제를 해결하기 위하여 박막의 열적 변형이 적고, 고밀도 플라즈마로 양질의 박막 증착이 가능한 FTS (Facing Target Sputtering)방법을 사용하여 AZO박막을 증착시키고 구조적, 전기적, 광학적인 특성을 평가 하였다. 측정 분석 결과 AZO는 가시광 영역에 높은 투과율이 요구되는 Flexible display 표시장치와 OLED, PDP, 유기태양전지 등 많은 영역에 사용이 가능 할 것이라 사료된다.

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Probing the Molecular Orientation of ZnPc on AZO Using Soft X-ray Spectroscopies for Organic Photovoltaic Applications

  • Jung, Yunwoo;Lee, Nalae;Kim, Jonghoon;Im, Yeong Ji;Cho, Sang Wan
    • Applied Science and Convergence Technology
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    • v.24 no.5
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    • pp.151-155
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    • 2015
  • The interfacial electronic structure between zinc phthalocyanine (ZnPc) and aluminumdoped zinc oxide (AZO) substrates has been evaluated by ultraviolet photoemission spectroscopy and angle-dependent x-ray absorption spectroscopy to understanding the molecular orientation of a ZnPc layer on the performance of small molecule organic photovoltaics (OPVs). We find that the ZnPc tilt angle improves the ${\pi}-{\pi}$ interaction on the AZO substrate, thus leading to an improved short-circuit current in OPVs based on phthalocyanine. Furthermore, the molecular orientation-dependent energy level alignment has been analyzed in detail using ultraviolet photoemission spectroscopy. We also obtained complete energy level diagrams of ZnPc/AZO and ZnPc/indium thin oxide.