• Title/Summary/Keyword: In-Ga doped ZnO

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Solution-Processed Fluorine-Doped Indium Gallium Zinc Oxide Channel Layers for Thin-Film Transistors (용액공정용 불소 도핑된 인듐 갈륨 징크 산화물 반도체의 박막 트랜지스터 적용 연구)

  • Jeong, Sunho
    • Journal of the Microelectronics and Packaging Society
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    • v.26 no.3
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    • pp.59-62
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    • 2019
  • In this study, we have developed solution-processed, F-doped In-Ga-Zn-O semiconductors and investigated their applications to thin-film transistors. In order for forming the appropriate channel layer, precursor solutions were formulated by dissolving the metal salts in the designated solvent and an additive, ammonium fluoride, was incorporated additionally as a chemical modifier. We have studied thermal and chemical contributions by a thermal annealing and an incorporation of chemical modifier, from which it was revealed that electrical performances of the thin-film transistors comprising the channel layer annealed at a low temperature can be improved significantly along with an addition of ammonium fluoride. As a result, when the 20 mol% fluorine was incorporated into the semiconductor layer, electrical characteristics were accomplished with a field-effect mobility of $1.2cm^2/V{\cdot}sec$ and an $I_{on}/_{off}$ of $7{\times}10^6$.

Effects of RF power on the Electrical and Optical Properties of GZO Thin Films Deposited on Flexible Substrate (RF 파워가 플렉시블 기판에 성장시킨 GZO 박막의 전기적 및 광학적 특성에 미치는 영향)

  • Joung, Yang-Hee;Kang, Seong-Jun
    • Journal of the Korea Institute of Information and Communication Engineering
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    • v.18 no.10
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    • pp.2497-2502
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    • 2014
  • The 5 wt.% Ga-doped zinc oxide (GZO) thin films were fabricated on PES substrates with various RF power 50~80 W by using RF magnetron sputtering in order to investigate the optical and electrical properties of GZO thin films. The XRD measurement showed that GZO thin films exhibit c-axis orientation. At a RF power of 70W, the GZO thin film showed the highest (002) diffraction peak with a Full-Width-Half-Maximum (FWHM) of $0.44^{\circ}$. AFM analysis showed that the lowest surface roughness (0.20 nm) was obtained for the GZO thin film fabricated at 70 W of RF power. The electrical property indicated that the minimum resistivity ($6.93{\times}10^{-4}{\Omega}{\cdot}cm$) and maximum carrier concentration ($7.04{\times}10^{20}cm^{-3}$) and hall mobility ($12.70cm^2/Vs$) were obtained in the GZO thin film fabricated at 70W of RF power. The optical transmittance in the visible region was higher than 80 %, regardless of RF power. The optical band-gap showed the slight blue-shift with increased in carrier concentration which can be explained by the Burstein-Moss effect.

Influence of Post-deposition Annealing Temperature on the Properties of GZO/Al Thin Film (진공열처리 온도에 따른 GZO/Al 적층박막의 구조적, 전기적, 광학적 특성 변화)

  • Kim, Sun-Kyung;Kim, Seung-Hong;Kim, So-Young;Jeon, Jae-Hyun;Gong, Tae-Kyung;Yoon, DaeYoung;Choi, DongYong;Choi, Dong-Hyuk;Son, Dong-Il;Kim, Daeil
    • Journal of the Korean institute of surface engineering
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    • v.47 no.2
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    • pp.81-85
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    • 2014
  • Ga doped ZnO (GZO)/Al bi-layered films were deposited on the glass substrate by RF and DC magnetron sputtering and then vacuum annealed at different temperatures of 100, 200 and $300^{\circ}C$ for 30 minutes to consider the effects of annealing temperature on the structural, electrical and optical properties of the films. For all depositions, the thicknesses of the GZO and Al films were kept constant at 95 and 5 nm, respectively, by controlling the deposition time. As-deposited GZO/Al bi-layered films showed a relatively low optical transmittance of 62%, while the films annealed at $300^{\circ}C$ showed a higher transmittance of 81%, compared to the other films. In addition, the electrical resistivity of the films was influenced by annealing temperature and the lowest resistivity of $9.8{\times}10^{-4}{\Omega}cm$ was observed in the films annealed at $300^{\circ}C$. Due to the increased carrier mobility, 2.35 $cm^2V^{-1}S^{-1}$ of the films. From the experimental results, it can be concluded that increasing the annealing temperature enhanced the optical and electrical properties of the GZO/Al films.