• Title/Summary/Keyword: IGZO (InGaZnO)

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Au Deposition Effect on Amorphous In-Ga-Zn-O Thin Film Investigated by High-Resolution x-ray Photoelectron Spectroscopy

  • Gang, Se-Jun;Baek, Jae-Yun;Sin, Hyeon-Jun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.301-301
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    • 2012
  • Amorphous In-Ga-Zn-O (a-IGZO)는 광학적으로 투명하고 높은 전자이동도를 가지고 있어서 차세대 thin-film-transistor의 channel layer 물질로 각광받고 있다. 이러한 a-IGZO를 TFT channel layer로 사용하기 위해서는 소스 드레인 전극물질과 IGZO박막의 계면에서 ohmic contact을 만드는 것도 중요하다. 하지만 산화물 반도체의 특성상 금속물질을 증착시킬 때 산화금속계면을 형성하기 때문에 ohmic contact이 형성되기 어려운 것으로 알려져 있다. Au는 보통 전극물질로 많이 사용되는데, 이는 전기전도도가 매우 높고, 독특한 산화환원반응 특성을 보이지만, 화학반응을 잘 일으키지 않는 안정성을 가지는 성질에 기인한다. 본 연구진은 Au가 a-IGZO에 증착 시에 일어나는 표면의 화학적 상태변화를 이해하기 위해 방사광을 이용한 고분해능 광전자 분광법을 이용하여 표면변화를 분석하였다. Au는 (Au 4f) 증착 초기엔 약간의 gold oxide가 함께 형성되지만, 주로 metal gold의 형태로 존재하였다. In 3d, Ga 3d, O 1s, Zn 3d 각각의 스펙트럼에서는 Au 증착으로 인해 낮은 결합에너지에 새로운 state가 나타났다. 한편, In은 상대적으로 다른 원소들에 비해 Au와 좀 더 결합을 잘 하는 것으로 나타났는데 이는, In 5s 전자궤도가 전도메커니즘에서 중요한 역할을 하기 때문에, In-Au의 상대적인 강한 결합은 a-IGZO의 전기적 특성 변화에 기여할 수 있음을 의미한다.

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Dry Etching Process for the Fabrication of Transparent InGaZnO TFTs

  • Yoon, S.M.;Cheong, W.S.;Hwang, C.S.;Kopark, S.H.;Cho, D.H.;Shin, J.H.;Ryu, M.;Byun, C.W.;Yang, S.;Lee, J.I.;Chung, S.M.;Chu, H.Y.;Cho, K.I.
    • 한국정보디스플레이학회:학술대회논문집
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    • 2008.10a
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    • pp.222-225
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    • 2008
  • We proposed the dry etching process recipe for the fabrication of In-Ga-Zn-O (IGZO)-based oxide TFTs, in which the etching behaviors of IGZO films were systematically investigated when the etching gas mixtures and their mixing ratios were varied. Good device characteristics of the fabricated TFT were successfully confirmed.

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Electrical Properties Depending on Active Layer Thickness and Annealing Temperature in Amorphous In-Ga-Zn-O Thin-film Transistors (활성층 두께 및 열처리 온도에 따른 비정질 인듐갈륨징크옥사이드 박막트랜지스터의 전기적 특성 변화)

  • Baek, Chan-Soo;Lim, Kee-Joe;Lim, Dong-Hyeok;Kim, Hyun-Hoo
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.25 no.7
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    • pp.521-524
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    • 2012
  • We report on variations of electrical properties with different active layer thickness and post-annealing temperature in amorphous In-Ga-Zn-O (IGZO) thin-film transistors (TFTs). In particular, subthreshold swing (SS) of the IGZO-TFTs was improved as increasing the active layer thickness at an given post-annealing temperature, accompanying the negative shift in turn-off voltage. However, as increasing post-annealing temperature, only turn-off voltage was shifted negatively with almost constant SS value. The effect of the active layer thickness and post-annealing temperature on electrical properties, such as SS, field effect mobility and turn-off voltage in IGZO-TFTs has been explained in terms of the variation of trap density in IGZO channel layer and at gate dielectric/IGZO interface.

IGZO Films Using RF-Magnetron Sputtering Method of Analysis of the substrate temperature (RF-Magnetron Sputtering법을 이용한 IGZO박막의 기판온도에 따른 특성분석)

  • Kim, Mi-Sun;Kim, Dong-Young;Bae, Kang;Shon, Sun-Young;Kim, Hwa-Min
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2010.06a
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    • pp.135-135
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    • 2010
  • 본 연구에서는 ZnO를 기반으로 하여 $In_2O_3$, $Ga_2O_3$를 혼합한 IGZO 박막의 물성들을 분석하였다. 광학적 특성 결과 가시광 영역에서 모두 80%이상의 투과율을 나타내었으며, 전기적 특성을 조사한 결과 $In_2O_3:Ga_2O_3$:ZnO (1:9:90 wt.%)의 IGZO박막에서 $1.90{\times}10^{-3}\;\Omega/cm$의 비저항을 확인 할 수 있었다. 또한 상온에서 $400^{\circ}C$로 기판온도에 변화를 주어 실험하였으며, 결정성을 분석하기 위하여 XRD (PANALYTICAL CO.)를 사용하였고, SEM (JEOL CO.) 을 이용하여 IGZO박막의 미세 구조를 확인하였다. UV-ViS spectrophotometer (SHIMADZU CO.) 을 사용하여 광학적 특성을 측정하였으며, Hall effect측정 장비를 이용하여 캐리어 농도 및 Hall이동도 변화에 따른 비저항을 비교 분석하였다.

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Process effects on morphology, electrical and optical properties of a-InGaZnO thin films by Magnetic Field Shielded Sputtering

  • Lee, Dong-Hyeok;Kim, Gyeong-Deok;Hong, Mun-Pyo
    • Proceedings of the Korean Vacuum Society Conference
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    • 2016.02a
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    • pp.217-217
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    • 2016
  • The amorphous InGaZnO (a-IGZO) is widely accepted as a promising channel material for thin-film transistor (TFT) applications owing to their outstanding electrical properties [1, 2]. However, a-IGZO TFTs have still suffered from their bias instability with illumination [1-4]. Up to now, many researchers have studied the sub-gap density of states (DOS) as the root cause of instability. It is well known that defect states can influence on the performances and stabilities of a-IGZO TFTs. The defects states should be closely related with the deposition condition, including sputtering power, and pressure. Nevertheless, it has not been reported how these defects are created during conventional RF magnetron sputtering. In general, during conventional RF magnetron sputtering process, negative oxygen ions (NOIs) can be generated by electron attachment in oxygen atom near target surface and then accelerated up to few hundreds eV by a self-bias; at this time, the high energy bombardment of NOIs induce defects in oxide thin films. Recently, we have reported that the properties of IGZO thin films are strongly related with effects of NOIs which are generated during the sputtering process [5]. From our previous results, the electrical characteristics and the chemical bonding states of a-IGZO thin films were depended with the bombardment energy of NOIs. And also, we suggest that the deep sub-gap states in a-IGZO as well as thin film properties would be influenced by the bombardment of high energetic NOIs during the sputtering process.In this study, we will introduce our novel technology named as Magnetic Field Shielded Sputtering (MFSS) process to prevent the NOIs bombardment effects and present how much to be improved the properties of a-IGZO thin film by this new deposition method. We deposited a-IGZO thin films by MFSS on SiO2/p-Si and glass substrate at various process conditions, after which we investigated the morphology, optical and electrical properties of the a-IGZO thin films.

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증착 온도 변화에 따른 IGZO 박막의 특성

  • Kim, Seong-Yeon;Lee, Tae-Il;Myeong, Jae-Min
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2009.05a
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    • pp.23.1-23.1
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    • 2009
  • Transparent thin film transistor(TTFT)는 기존의 디스플레이가 가지고 있는 공간적, 시각적 제약을 해소하는 것이 가능하며, 이는 디스플레이 산업 및 기술이 지향하는 대면적, 저가격, 공정의 단순함을 해결해 줄 수 있기 때문에 최근 TTFT에 관한 연구가 급증하고 있다. 산화물 기반의 TFT는 유리, 금속, 플라스틱 등등 그 기판 종류에 상관없이 균일한 제작이 가능하며, 상온 및 저온에서 대면적으로 제작 가능하고, 저렴한 비용으로 제작 가능하다는 장점 때문에 최근 산화물을 기반으로 하는 TFT 연구가 많이 이루어지고 있다. 현재 TTFT 물질로 많이 연구되고 있는 산화물은 ZnO(3.4 eV)나 $InO_x$(3.6 eV), $GaO_x$(4.9 eV), $SnO_x$(3.7 eV)등의 물질과 각각의 조합으로 구성된 재료들이 주로 사용되고 있다. 가장 많은 연구가 이루어진 ZnO 기반의 TFT는 mobility와 switching 속도에서 우수한 특성을 보이나, amorphous ZnO 기반의 TFT의 경우 소자의 안정성이 떨어지는 것으로 보고되고 있다. 따라서 본 연구에서는 ZnO 보다 넓은 bandgap energy를 가질 수 있으며, n-type 특성을 보이고, amorphous 구조로 제작 가능한 IGZO 물질을 사용하여 RF magnetron sputtering 방법으로 박막 증착 온도의 변화를 주어 증착하였고, 증착된 IGZO 박막의 열처리를 통해 이에 따른 특성 변화를 분석하였다. Field emission scanning electron microscope(FESEM)와 surface profiler를 이용하여 IGZO 박막의 표면의 형상과 두께를 확인하였으며, x-ray diffraction(XRD) 분석을 통해 박막의 결정학적 특성을 관찰하였다. TTFT 물질로서 IGZO 박막의 적합성 여부를 확인하기 위하여 TFT를 만든 후 I-V를 측정하였으며, UV-vis를 이용하여 IGZO 박막의 투과율을 분석하여 TTFT로의 응용 가능성을 확인하였다.

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Physics-Based SPICE Model of a-InGaZnO Thin-Film Transistor Using Verilog-A

  • Jeon, Yong-Woo;Hur, In-Seok;Kim, Yong-Sik;Bae, Min-Kyung;Jung, Hyun-Kwang;Kong, Dong-Sik;Kim, Woo-Joon;Kim, Jae-Hyeong;Jang, Jae-Man;Kim, Dong-Myong;Kim, Dae-Hwan
    • JSTS:Journal of Semiconductor Technology and Science
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    • v.11 no.3
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    • pp.153-161
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    • 2011
  • In this work, we report the physics-based SPICE model of amorphous oxide semiconductor (AOS) thin-film transistors (TFTs) and demonstrate the SPICE simulation of amorphous InGaZnO (a-IGZO) TFT inverter by using Verilog-A. As key physical parameter, subgap density-of-states (DOS) is extracted and used for calculating the electric potential, carrier density, and mobility along the depth direction of active thin-film. It is confirmed that the proposed DOS-based SPICE model can successfully reproduce the voltage transfer characteristic of a-IGZO inverter as well as the measured I-V characteristics of a-IGZO TFTs within the average error of 6% at $V_{DD}$=20 V.

Electrical and Optical Properties of In-Ga-Zn-O Thin Films for TTFTs

  • Kim, Ji-Hong;Lee, Won-Yong;Moon, Byung-Moo;Koo, Sang-Mo
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.06a
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    • pp.309-309
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    • 2009
  • In-Ga-Zn-O (IGZO) has drawn much attention as a compatible material for transparent thin film transistors (TTFT) channel layer due to its high mobility and optical transparency at low processing temperatures. In this work, we investigated the effect of oxygen ambient on structural, electrical and optical properties of amorphous In-Ga-Zn-O (IGZO) thin films by using pulsed laser deposition (PLD). The films were deposited at various oxygen pressures and the structural, electrical and optical properties were investigated. X-ray diffraction (XRD) analysis showed that amorphous IGZO films were grown at all oxygen pressures. The surface morphology and optical properties with various oxygen pressures were studied by field emission scanning electron microscopy (FE-SEM) and UV-VIS spectroscopy, respectively. The grain boundary was observed more apparently and the calculated optical band gap became larger as oxygen pressure increased. To examine the electrical properties, Hall-effect measurements were carried out. The films showed high mobility.

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Capacitive Touch Sensor Pixel Circuit with Single a-InGaZnO Thin Film Transistor (단일 a-InGaZnO 박막 트랜지스터를 이용한 정전용량 터치 화소 센서 회로)

  • Kang, In Hye;Hwang, Sang Ho;Baek, Yeong Jo;Moon, Seung Jae;Bae, Byung Seong
    • Journal of Sensor Science and Technology
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    • v.28 no.2
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    • pp.133-138
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    • 2019
  • The a-InGaZnO (a-IGZO) thin film transistor (TFT) has the advantages of larger mobility than that of amorphous silicon TFTs, acceptable reliability and uniformity over a large area, and low process cost. A capacitive-type touch sensor was studied with an a-IGZO TFT that can be used on the front side of a display due to its transparency. A capacitive sensor detects changes of capacitance between the surface of the finger and the sensor electrode. The capacitance varies according to the distance between the sensor plate and the touching or non-touching of the sensing electrode. A capacitive touch sensor using only one a-IGZO TFT was developed with the reduction of two bus lines, which made it easy to reduce the pixel pitch. The proposed sensor circuit maintained the amplification performance, which was investigated for various drive conditions.

산소분압에 따른 IGZO 박막트랜지스터의 특성변화 연구

  • Han, Dong-Seok;Gang, Yu-Jin;Park, Jae-Hyeong;Yun, Don-Gyu;Park, Jong-Wan
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.497-497
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    • 2013
  • Semiconducting amorphous InGaZnO (a-IGZO) has attracted significant research attention as improved deposition techniques have made it possible to make high-quality a-IGZO thin films. IGZO thin films have several advantages over thin film transistors (TFTs) based on other semiconducting channel layers.The electron mobility in IGZO devices is relatively high, exceeding amorphous Si (a-Si) by a factor of 10 and most organic devices by a factor of $10^2$. Moreover, in contrast to other amorphous semiconductors, highly conducting degenerate states can be obtained with IGZO through doping, yet such a state cannot be produced with a-Si. IGZO thin films are capable of mobilities greaterthan 10 $cm^2$/Vs (higher than a-Si:H), and are transparent at visible wavelengths. For oxide semiconductors, carrier concentrations can be controlled through oxygen vacancy concentration. Hence, adjusting the oxygen partial pressure during deposition and post-deposition processing provides an effective method of controlling oxygen concentration. In this study, we deposited IGZO thinfilms at optimized conditions and then analyzed the film's electrical properties, surface morphology, and crystal structure. Then, we explored how to generate IGZO thin films using DC magnetron sputtering. We also describe the construction and characteristics of a bottom-gate-type TFT, including the output and transfer curves and bias stress instability mechanism.

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