• Title/Summary/Keyword: ZnO-based TFT

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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.

Sol-gel deposited TiInO thin-films transistor with Ti effect

  • Kim, Jung-Hye;Son, Dae-Ho;Kim, Dae-Hwan;Kang, Jin-Kyu;Ha, Ki-Ryong
    • Proceedings of the Korean Vacuum Society Conference
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    • 2010.02a
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    • pp.200-200
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    • 2010
  • In recent times, metal oxide semiconductors thin films transistor (TFT), such as zinc and indium based oxide TFTs, have attracted considerable attention because of their several advantageous electrical and optical properties. There are many deposition methods for fabrication of ZnO-based materials such as chemical vapor deposition, RF/DC sputtering and pulsed laser deposition. However, these vacuum process require expensive equipment and result in high manufacturing costs. Also, the methods is difficult to fabricate various multicomponent oxide semiconductor. Recently, several groups report solution processed metal oxide TFTs for low cost and non vacuum process. In this study, we have newly developed solution-processed TFTs based on Ti-related multi-component transparent oxide, i. e., InTiO as the active layer. We propose new multicomponent oxide, Titanium indium oxide(TiInO), to fabricate the high performance TFT through the sol-gel method. We investigated the influence of relative compositions of Ti on the electrical properties. Indium nitrate hydrate [$In(NO^3).xH_2O$] and Titanium isobutoxide [$C_{16}H_{36}O_4Ti$] were dissolved in acetylacetone. Then monoethanolamine (MEA) and acetic acid ($CH_3COOH$) were added to the solution. The molar concentration of indium was kept as 0.1 mol concentration and the amount of Ti was varied according to weighting percent (0, 5, 10%). The complex solutions become clear and homogeneous after stirring for 24 hours. Heavily boron (p+) doped Si wafer with 100nm thermally grown $SiO_2$ serve as the gate and gate dielectric of the TFT, respectively. TiInO thin films were deposited using the sol-gel solution by the spin-coating method. After coating, the films annealed in a tube furnace at $500^{\circ}C$ for 1hour under oxygen ambient. The 5% Ti-doped InO TFT had a field-effect mobility $1.15cm^2/V{\cdot}S$, a threshold voltage of 4.73 V, an on/off current ratio grater than $10^7$, and a subthreshold slop of 0.49 V/dec. The 10% Ti-doped InO TFT had a field-effect mobility $1.03\;cm^2/V{\cdot}S$, a threshold voltage of 1.87 V, an on/off current ration grater than $10^7$, and a subthreshold slop of 0.67 V/dec.

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Transparent Oxide Thin Film Transistors with Transparent ZTO Channel and ZTO/Ag/ZTO Source/Drain Electrodes

  • Choi, Yoon-Young;Choi, Kwang-Hyuk;Kim, Han-Ki
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.127-127
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    • 2011
  • We investigate the transparent TFTs using a transparent ZnSnO3 (ZTO)/Ag/ZTO multilayer electrode as S/D electrodes with low resistivity of $3.24{\times}10^{-5}$ ohm-cm, and high transparency of 86.29% in ZTO based TFTs. The Transparent TFTs (TTFTs) are prepared on glass substrate coated 100 nm of ITO thin film. On atomic layer deposited $Al_2\;O_3$, 50 nm ZTO layer is deposited by RF magnetron sputtering through a shadow mask for channel layer using ZTO target with 1 : 1 molar ratio of ZnO : $SnO_2$. The power of 100W, the working pressure of 2mTorr, and the gas flow of Ar 20 sccm during the ZTO deposition. After channel layer deposition, a ZTO (35 nm)/Ag (12 nm)/ZTO(35 nm) multilayer is deposited by DC/RF magnetron sputtering to form transparent S/D electrodes which are patterned through the shadow mask. Devices are annealed in air at 300$^{\circ}C$ for 30 min following ZTO deposition. Using UV/Visible spectrometer, the optical transmittances of the TTFT using ZTO/Ag/ ZTO multilayer electrodes are compared with TFT using Mo electrode. The structural properties of ZTO based TTFT with ZTO/Ag/ZTO multilayer electrodes are analyzed by high resolution transmission electron microscopy (HREM) and X-ray photoelectron spectroscopy (XPS). The transfer and output characterization of ZTO TTFTs are examined by a customized probe station with HP4145B system in are.

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Fabrication and Characteristics of Zinc Oxide- and Gallium doped Zinc Oxide thin film transistor using Radio Frequency Magnetron sputtering at Room Temperature (Zinc Oxide와 갈륨이 도핑 된 Zinc Oxide를 이용하여 Radio Frequency Magnetron Sputtering 방법에 의해 상온에서 제작된 박막 트랜지스터의 특성 평가)

  • Jeon, Hoon-Ha;Verma, Ved Prakash;Noh, Kyoung-Seok;Kim, Do-Hyun;Choi, Won-Bong;Jeon, Min-Hyon
    • Journal of the Korean Vacuum Society
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    • v.16 no.5
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    • pp.359-365
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    • 2007
  • In this paper we present a bottom-gate type of zinc oxide (ZnO) and Gallium (Ga) doped zinc oxide (GZO) based thin film transistors (TFTs) through applying a radio frequency (RF) magnetron sputtering method at room temperature. The gate leakage current can be reduced up to several ph by applying $SiO_2$ thermally grown instead of using new gate oxide materials. The root mean square (RMS) values of the ZnO and GZO film surface were measured as 1.07 nm and 1.65 nm, respectively. Also, the transmittances of the ZnO and GZO film were more than 80% and 75%, respectively, and they were changed as their film thickness. The ZnO and GZO film had a wurtzite structure that was arranged well as a (002) orientation. The ZnO TFT had a threshold voltage of 2.5 V, a field effect mobility of $0.027\;cm^2/(V{\cdot}s)$, a on/off ratio of $10^4$, a gate voltage swing of 17 V/decade and it operated in a enhancement mode. In case of the GZO TFT, it operated in a depletion mode with a threshold voltage of -3.4 V, a field effect mobility of $0.023\;cm^2/(V{\cdot}s)$, a on/off ratio of $2{\times}10^4$ and a gate voltage swing of 3.3 V/decade. We successfully demonstrated that the TFTs with the enhancement and depletion mode type can be fabricated by using pure ZnO and 1wt% Ga-doped ZnO.

Charge Trapping Mechanism in Amorphous Si-In-Zn-O Thin-Film Transistors During Positive Bias Stress

  • Lee, Sang Yeol
    • Transactions on Electrical and Electronic Materials
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    • v.17 no.6
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    • pp.380-382
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    • 2016
  • The mechanism for instability under PBS (positive bias stress) in amorphous SIZO (Si-In-Zn-O) thin-film transistors was investigated by analyzing the charge trapping mechanism. It was found that the bulk traps in the SIZO channel layer and the channel/dielectric interfacial traps are not created during the PBS duration. This result suggests that charge trapping in gate dielectric, and/or in oxide semiconductor bulk, and/or at the channel/dielectric interface is a more dominant mechanism than the creation of defects in the SIZO-TFTs.

Ultra-High Resolution and Large Size Organic Light Emitting Diode Panels with Highly Reliable Gate Driver Circuits

  • Hong Jae Shin
    • International journal of advanced smart convergence
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    • v.12 no.4
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    • pp.1-7
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    • 2023
  • Large-size, organic light-emitting device (OLED) panels based on highly reliable gate driver circuits integrated using InGaZnO thin film transistors (TFTs) were developed to achieve ultra-high resolution TVs. These large-size OLED panels were driven by using a novel gate driver circuit not only for displaying images but also for sensing TFT characteristics for external compensation. Regardless of the negative threshold voltage of the TFTs, the proposed gate driver circuit in OLED panels functioned precisely, resulting from a decrease in the leakage current. The falling time of the circuit is approximately 0.9 ㎲, which is fast enough to drive 8K resolution OLED displays at 120 Hz. 120 Hz is most commonly used as the operating voltage because images consisting of 120 frames per second can be quickly shown on the display panel without any image sticking. The reliability tests showed that the lifetime of the proposed integrated gate driver is at least 100,000 h.

InGaZnO active layer 두께에 따른 thin-film transistor 전기적인 영향

  • U, Chang-Ho;Kim, Yeong-Lee;An, Cheol-Hyeon;Kim, Dong-Chan;Gong, Bo-Hyeon;Bae, Yeong-Suk;Seo, Dong-Gyu;Jo, Hyeong-Gyun
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.11a
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    • pp.5-5
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    • 2009
  • Thin-film-transistors (TFTs) that can be prepared at low temperatures have attracted much attention because of the great potential for transparent and flexible electronics. One of the mainstreams in this field is the use of organic semiconductors such as pentacene. But device performance of the organic TFTs is still limited due to low field-effect mobility and rapid degradation after exposing to air. Alternative approach is the use of amorphous oxide semiconductors as a channel. Amorphous oxide semiconductors (AOSs) based TFTs showed the fast technological development, because AOS films can be fabricated at room temperature and exhibit the possibility in application like flexible display, electronic paper, and larges solar cells. Among the various AOSs, a-IGZO has lots of advantages because it has high channel mobility, uniform surface roughness and good transparency. [1] The high mobility is attributed to the overlap of spherical s-orbital of the heavy post-transition metal cations. This study demonstrated the effect of the variation in channel thickness from 30nm to 200nm on the TFT device performance. When the thickness was increased, turn-on voltage and subthreshold swing was decreased. The a-IGZO channels and source/drain metals were deposited with shadow mask. The a-IGZO channel layer was deposited on $SiO_2$/p-Si substrates by RF magnetron sputtering, where RF power is 150W. And working pressure is 3m Torr, at $O_2/Ar$ (2/28 sccm) atmosphere. The electrodes were formed with electron-beam evaporated Ti (30 nm) and Au (70 nm) bilayer. Finally, Al (150nm) as a gate metal was thermal-evaporated. TFT devices were heat-treated in a furnace at 250 $^{\circ}C$ and nitrogen atmosphere for 1hour. The electrical properties of the TFTs were measured using a probe-station. The TFT with channel thickness of 150nm exhibits a good subthreshold swing (SS) of 0.72 V/decade and on-off ratio of $1{\times}10^8$. The field effect mobility and threshold voltage were evaluated as 7.2 and 8 V, respectively.

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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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UV를 이용한 IGZO 표면 상태 변화 및 전기적 특성 변화

  • Jo, Yeong-Je;Choe, Deok-Gyun;Mun, Yeong-Ung
    • Proceedings of the Materials Research Society of Korea Conference
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    • 2011.05a
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    • pp.242.1-242.1
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    • 2011
  • 산화물 반도체는 높은 이동도와 낮은 공정 온도, 넓은 밴드갭으로 인한 투명성등 많은 장정을 가지고 있어 최근 많이 연구되고 있다. 그 중에서도 InGaZnO (IGZO)는 In, Ga 함유량으로 박막의 전기적 특성을 쉽게 조절할 수 있고 상온에서 비정질 상태로 증착되어 균일성에 장점이 있다. IGZO 박막을 TFT에 적용 시 MOSFET과는 다르게 축적 상태에서 채널이 형성되기 때문에 산화물 반도체 내에 캐리어 농도는 TFT 특성에 많은 영향을 미친다. 또한, 실리콘 기반의 트랜지스터는 이온 주입 및 확산 공정을 통해서 선택적으로 $10^{20}/cm^3$ 이상의 고농도 도핑을 실시하여 좋은 트랜지스터 특성을 확보할 수 있으나 IGZO 박막에는 이러한 접근이 불가능하다. 따라서 IGZO 박막의 캐리어 농도를 조절할 수 있으면 소스/드레인과 반도체의 접촉 저항 감소 및 전계 효과 이동도등 많은 특성을 개선할 수 있다. 본 연구에서는 UV light를 이용하여 IGZO 박막의 캐리어 농도를 조절하였다. IGZO 박막은 UV light 조사로 인해 Mo와 IGZO박막의 접촉저항이 $3{\times}10^3\;{\Omega}^*cm$에서 $1{\times}10^2\;{\Omega}^*cm$로 감소하였다. 이는 UV 조사로 표면에 금속-OH 결합이 생성되어 IGZO 박막의 캐리어 농도가 ${\sim}5{\times}10^{15}/cm^3$에서 ${\sim}3{\times}10^{17}/cm^3$까지 증가하기 때문이다. 또한 표면에 생성된 OH기는 강한 친수성 성질을 보여주고 표면의 높은 에너지 상태는 Self-Assembly Monolayer (SAM) 공정 적용이 가능 하다. 본 실험에서는 SAM 공정을 적용하여 IGZO-based TFT 제작에 성공하였고, 이 TFT는 UV 조사 시간에 따라 전계 효과 이동도가 0.03 $cm^2/Vs$에서 2.1 $cm^2/Vs$으로 100배 정도 증가하였다.

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Influence of carrier suppressors on electrical properties of solution-derived InZnO-based thin-film transistors

  • Sim, Jae-Jun;Park, Sang-Hui;Jo, Won-Ju
    • Proceedings of the Korean Vacuum Society Conference
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    • 2016.02a
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    • pp.262-262
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    • 2016
  • 최근 고해상도 디스플레이가 주목받으면서 기존 비정질 실리콘(a-Si)을 대체할 수 있는 재료에 관한 연구가 활발히 진행되고 있다. a-Si의 경우 간단한 공정 과정, 적은 생산비용, 대면적화가 가능하다는 장점이 있지만 전자 이동도가 매우 낮은 단점이 있다. 반면, 산화물 반도체는 비정질 상태에서 전자 이동도가 높으며 큰 밴드갭을 가지고 있어 투명한 특성을 나타낼 뿐만 아니라, 저온공정이 가능하여 기판의 제한이 없는 장점을 가지고 있다. 대표적으로 가장 널리 연구되고 있는 산화물 반도체는 a-IGZO(amorphous indium-gallium-zinc oxide)이다. 그러나 InZnO(IZO) 기반의 산화물 반도체에서 carrier suppressor 역할을 하는 Ga(gallium)은 수요에 대한 공급이 원활하지 못하여 비싸다는 단점이 있다. 그러므로 경제적이면서 a-IGZO와 유사한 전기적 특성을 나타낼 수 있는 suppressor 물질이 필요하다. 따라서 본 연구에서는 IZO 기반의 산화물 반도체에서 Ga을 Hf(hafnium), Zr(zirconium), Si(silicon)으로 대체하여 용액증착(solution-deposition) 공정으로 각각의 채널층을 형성한 back-gate type의 박막 트랜지스터(thin-film transistor, TFT) 소자를 제작하였다. 용액증착 공정은 물질의 비율을 자유롭게 조절할 수 있고, 대기압의 조건에서도 공정이 가능하기 때문에 짧은 공정시간과 저비용의 장점이 있다. 제작된 소자는 p-type Si 위에 게이트 절연막으로 100 nm의 열산화막이 성장된 기판을 사용하였다. 표준 RCA 클리닝 후에 각 solution 물질을 spin coating 방식으로 증착하였다. 이후, photolithography, develop, wet etching의 과정을 거쳐 채널층 패턴을 형성하였다. 또한, 산화물 반도체의 전기적 특성을 향상시키기 위해서 후속 열처리 과정(post deposition annealing, PDA)은 필수적이다. CTA 방식은 높은 열처리 온도와 긴 열처리 시간의 단점이 있다. 따라서, 본 연구에서는 $100^{\circ}C$ 이하의 낮은 온도와 짧은 열처리 시간의 장점을 가지는 MWI (microwave irradiation)를 후속 열처리로 진행하였다. 그 결과, 각 물질로 구현된 소자들은 기존 a-IGZO와 비교하여 적은 양의 carrier suppressor로도 우수한 전기적 특성 및 안정성을 얻을 수 있었다. 따라서, Si, Hf, Zr 기반의 산화물 반도체는 기존의 Ga을 대체하여 저비용으로 디스플레이를 구현할 수 있는 IZO 기반 재료로 기대된다.

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