• Title/Summary/Keyword: GZO thin film

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Characterization of ZnO Thin Films and Ga doped ZnO Thin Films Post Annealing for Transparent Conducting Oxide Application (투명전극 응용을 위한 ZnO박막과 Ga 도핑 된 ZnO박막의 성장 후 열처리에 따른 특성분석)

  • Jang, Jae-Ho;Bae, Hyo-Jun;Lee, Ji-Su;Jung, Kwang-Hyun;Choi, Hyon-Kwang;Jeon, Min-Hyon
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.22 no.7
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    • pp.567-571
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    • 2009
  • Polycrystalline ZnO and Ga doped ZnO (GZO) films are deposited on glass substrate by RF magnetron sputtering at room temperature. The characteristics of ZnO and GZO films are investigated with X-ray diffraction measurement, UV-VIS-NIR spectrophotometer $(250{\sim}1200nm)$ and hall measurement. The post-growth thermal treatment of these films is carried out in N2 ambient at $500^{\circ}C$ for 30 min and an hour. ZnO and GZO films have different changing behavior of structural and optical properties by annealing. To use transparent conductive films for solar cell, films should have not only high transmittance but also good electrical property. Although as deposited GZO films have electrical properties than ZnO films, GZO films have not good transmittance properties. Consequently, we succeed that the high transmittance of GZO films is improved by annealing process.

Effect of Electron Irradiation Energy on the Properties of GZO/SiO2 Thin Films on Polycarbonate (PC 기판위에 증착된 SiO2/GZO박막의 전자빔 조사에너지에 따른 특성 변화)

  • Heo, Sung-Bo;Park, Min-Jae;Jung, Uoo-Chang;Kim, Dae-Il;Cha, Byung-Chul
    • Journal of the Korean institute of surface engineering
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    • v.47 no.6
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    • pp.341-346
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    • 2014
  • Ga-doped ZnO (GZO) single layer and $SiO_2/GZO$ bi-layered films were deposited on Polycarbonate(PC) substrate by radio frequency magnetron sputtering. Influence of the structural, electrical, and optical properties of the films was considered. We have considered the influence of electron irradiation energy of 450 and 900 eV on the stuctural, electrical and optical properties of $SiO_2/GZO$ thin films. The optical transmittance in a visible wave length region increased with the electron irradiation energy. The electrical resistivity of the films were dependent on the electron's irradiation energy. The $SiO_2/GZO$ films irradiated at 900 eV were showen the lowest resistivity of $7.8{\times}10^{-3}{\Omega}cm$. The film which was irradiated by electron at 900 eV shows 84.3% optical transmittance and also shows lower than contact angle of $58^{\circ}$ in this study.

A Study on Electrical, Optical Properties of GZO Thin Film with Target Crystalline (GZO 타겟 결정성에 따른 박막의 전기적 광학적 특성)

  • Lee, Kyu-Ho;Kim, Kyung-Hwan
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.25 no.2
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    • pp.114-120
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    • 2012
  • In this research, we prepared Ga doped zinc oxide(ZnO:Ga, GZO) targets each difference sintering temperature $700^{\circ}C$, $800^{\circ}C$, and doping rate 1 wt.%, 2 wt.%, 3 wt.%. The characteristics of thin film on glass substrates which deposited by facing target sputtering in pure Ar atmosphere are reported. Ga doped zinc oxide film is attracted material through low resistivity, high transmittance, etc. When prepared target powder's structure was investigated by scanning electron microscope, densification and coarsening by driving force was observed. For each ZnO:Ga films with a $Ga_2O_3$ content of 3 wt.% at input power of 45W, the lowest resistivity of $9.967{\times}10^{-4}{\Omega}{\cdot}cm$ ($700^{\circ}C$) and $9.846{\times}10^{-4}{\Omega}{\cdot}cm$ ($800^{\circ}C$) was obtained. the carrier concentration and mobility were $4.09{\times}10^{20}cm^{-3}$($700^{\circ}C$), $4.12{\times}10^{20}cm^{-3}$($800^{\circ}C$) and $15.31cm^2/V{\cdot}s(700^{\circ}C)$, $12.51cm^2/V{\cdot}s(800^{\circ}C)$, respectively. And except 1 wt.% Ga doped ZnO thin film, average transmittance of these samples in the range 350-800 nm was over 80%.

A Study on the Relationship between Oxygen and Carrier Concentration in a GZO Film on an Amorphous Structure (GZO 박막에 대한 비정질 구조에 따른 산소공공과 전하농도의 연관성에 대한 연구)

  • Kim, Do Hyoung;Kim, Hong Bae
    • Journal of the Semiconductor & Display Technology
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    • v.14 no.4
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    • pp.25-29
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    • 2015
  • In this study, RF magnetron sputtering was used to investigate the relationship between oxygen vacancy and carrier concentration in a GZO film on an amorphous structure. RF power was fixed at 50W and Ar flow was changed on a glass plate to create a thin film at room temperature. The transmittance of Al-adopted amorphous GZO was measured at 85% or higher; therefore, the transmittance was shown to be outstanding in all films. The hall mobility was also shown to be higher at the film showing the high transmittance at a short-wavelength, whereas the optical energy gap was shown to be higher at the film with high oxygen vacancy. The oxygen vacancy at the amorphous oxide semi-conductor increased the optical energy gap while it was not directly involved in increasing the mobility. The oxygen vacancy increases the carrier concentration while lowering the quality of amorphous structure; such factor, therefore affected the mobility. The increase of amorphous property is a direct way to increase the mobility of amorphous oxide semi-conductor.

Effect of substrate on growth of Ga-doped ZnO thin films (Ga 도핑된 ZnO 박막의 기판에 따른 성장 특성)

  • Kim, Ji-Hong;Roh, Ji-Hyoung;Ryu, Kyoung-Jin;Moon, Sung-Joon;Kim, Jae-Won;Do, Kang-Min;Moon, Byung-Moo;Koo, Sang-Mo
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2010.06a
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    • pp.296-296
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    • 2010
  • In this work, we report the effect of substrate on the growth of Ga-doped ZnO (GZO) thin films. GZO thin films were deposited on various substrates by using pulsed laser deposition (PLD). The structural properties, surface morphologies, and electrical properties were investigated. From the results of HRXRD, c-plane (0002) oriented growth of GZO films was confirmed on $Al_2O_3$ (0001). On the other hand, the GZO films on LAO (100) substrates were grown along the a-axis. The obvious differences on the electrical properties of each film were also obtained.

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Electrical and Optical Properties of the GZO Transparent Conducting Layer Prepared by Magnetron Sputtering Technique (마그네트론 스퍼터링법으로 제작된 GZO 투명전도막의 전기적 및 광학적 특성)

  • No, Im-Jun;Kim, Sung-Hyun;Shin, Paik-Kyun;Lee, Kyung-Il;Kim, Sun-Min;Cho, Jin-Woo
    • Journal of the Korean Institute of Illuminating and Electrical Installation Engineers
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    • v.24 no.4
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    • pp.110-115
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    • 2010
  • Transparent conducting gallium-doped zinc oxide (GZO) thin films which were deposited on Corning glass substrate using an Gun-type rf magnetron sputtering deposition technology. The GZO thin films were fabricated with an GZO ceramic target (Zn : 97[wt%], $Ga_2O_3$ : 3[wt%]). The GZO thin films were deposited by varying the growth conditions such as the substrate temperature, oxygen pressure. Among the GZO thin films fabricated in this study, the one formed at conditions of the substrate temperature of 200[$^{\circ}C$], Ar flow rate of 50[sccm], $O_2$ flow rate of 5[sccm], rf power of 80[W] and working pressure of 5[mtorr] showed the best properties of an electrical resistivity of $2.536{\times}10^{-4}[{\Omega}{\cdot}cm]$, a carrier concentration of $7.746{\times}10^{20}[cm^{-3}]$, and a carrier mobility of 31.77[$cm^2/V{\cdot}S$], which indicates that it could be used as a transparent electrode for thin film transistor and flat panel display applications.

Au Catalyst Free and Effect of Ga-doped ZnO Seed Layer on Structural Properties of ZnO Nanowire Arrays

  • Yer, In-Hyung;Roh, Ji-Hyoung;Shin, Ju-Hong;Park, Jae-Ho;Jo, Seul-Ki;Park, On-Jeon;Moon, Byung-Moo
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.02a
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    • pp.354-354
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    • 2012
  • In this study, we report the vertically aligned ZnO nanowires by using different type of Ga-doped ZnO (GZO) thin films as seed layers to investigate how the underlying GZO film micro structure affects the distribution of ZnO nanowires. Arrays of highly ordered ZnO nanowires have been synthesized on GZO thin film seed layer prepared on p-Si substrates ($7-13{\Omega}cm$) with utilize of a pulsed laser deposition (PLD). With the vapor-liquid-solid (VLS) growth process, the ZnO nanowire synthesis carries out no metal catalyst and is cost-effective; furthermore, The GZO seed layer facilitates the uniform growth of well-aligned ZnO nanowires. The influence of the growth temperature and various thickness of GZO seed layer have been analyzed. Crystallinity of grown seed layer was studied by X-Ray diffraction (XRD); diameter and morphology of ZnO nanowires on seed layer were investigated by field emission scanning electron microscopy (FE-SEM). Our results suggest that the GZO seed layer with high c-axis orientation, good crystallinity, and less lattice mismatch is key parameters to optimize the growth of well-aligned ZnO nanowire arrays.

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The Influence of Al Underlayer on the Optical and Electrical Properties of GZO/Al Thin Films

  • Kim, Sun-Kyung;Kim, So-Young;Kim, Seung-Hong;Jeon, Jae-Hyun;Gong, Tae-Kyung;Kim, Daeil;Choi, Dong-Hyuk;Son, Dong-Il
    • Transactions on Electrical and Electronic Materials
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    • v.14 no.6
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    • pp.321-323
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    • 2013
  • 100 nm thick Ga doped ZnO (GZO) thin films were deposited with DC and RF magnetron sputtering at room temperature on glass substrate and Al coated glass substrate, respectively. and the effect of the Al underlayer on the optical and electrical properties of the GZO films was investigated. As-deposited GZO single layer films had an optical transmittance of 80% in the visible wavelength region, and sheet resistance of 1,516 ${\Omega}/{\Box}$, while the optical and electrical properties of GZO/Al bi-layered films were influenced by the thickness of the Al buffer layer. GZO films with 2 nm thick Al film show a lower sheet resistance of 990 ${\Omega}/{\Box}$, and an optical transmittance of 78%. Based on the figure of merit (FOM), it can be concluded that the thin Al buffer layer effectively increases the performance of GZO films as a transparent and conducting electrode without intentional substrate heating or a post deposition annealing process.

The effect of thickness and operation temperature on Ga doped ZnO thin film NOx gas sensor

  • Hwang, Hyeon-Seok;Yeo, Dong-Hun;Kim, Jong-Hui;Song, Jun-Tae;Kim, Jeong-Ho
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2008.06a
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    • pp.365-365
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    • 2008
  • In this work, Ga-doped ZnO (GZO) thin films for NOx gas sensor application were deposited on low temperature co-fired ceramics (LTCC) substrates, by RF magnetron sputtering method. The LTCC substrate is one of promising materials for this application since it has many advantages (e.g., low cost production, high manufacturing yields and easy realizing 3D structure etc.). The LTCC substrates with thickness of 400 pm were fabricated by laminating 12 green tapes which consist of alumina and glass particle in an organic binder. The structural properties of the fabricated GZO thin films with different thickness are analyzed by X-ray diffraction method (XRD) and field emission scanning electron microscope (FESEM). The GZO gas sensors are tested by gas measurement system under varing operation temperature and show good performance to the NOx gas in sensitivity and response time.

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Properties of GZO Thin Films Propared by RF Magnetron Sputtering at low temperature (RF 마그네트론 스퍼터링 법으로 저온 증착한 GZO박막의 특성)

  • Kwon, Soon-Il;Kang, Gyo-Sung;Yang, Kea-Joon;Park, Jea-Hwan;Lim, Dong-Gun;Lim, Seung-Woo
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2007.11a
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    • pp.169-170
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    • 2007
  • In this paper we report upon an investigation into the effect of sputter pressure and RF power on the electrical properties of Gallium doped zinc oxide (GZO) film. GZO films were deposited on glass substrate without substrate temperature by RF magnetron sputtering from a ZnO target mixed with 5 wt% $Ga_2O_3$. Argon gas pressure and RF power were in the range of 1~11 mTorr, and 50~100 W, respectively. However, the resistivity of the film was strongly influenced by the sputter pressure and RF power. We were able to achieve as low as $1.5{\times}10^{-3}\;{\Omega}cm$, without substrate temperature.

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