• Title/Summary/Keyword: $In_2O_3-ZnO-SnO_2$

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Multi-component $ZnO-In_2O_3-SnO_2$ thin films deposited by RF magnetron co-sputtering

  • Lee, Byoung-Hoon;Hur, Jae-Sung;Back, Sang-Yul;Lee, Jeong-Seop;Song, Jung-Bin;Son, Chang-Sik;Choi, In-Hoon
    • Proceedings of the Korean Society Of Semiconductor Equipment Technology
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    • 2006.10a
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    • pp.68-71
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    • 2006
  • Multi-component $ZnO-In_2O_3-SnO_2$ thin films have been prepared by RF magnetron co-sputtering using targets composed of $In_3Sn_4O_{12}$(99.99%) [1] and ZnO(99.99%) at room temperature. $In_3Sn_4O_{12}$ contains less In than commercial ITO, so that it lowers cost. Working pressure was held at 3 mtorr flowing Ar gas 20 sccm and sputtering time was 30 min. RF power ratio [RF1 / (RFI + RF2)] of two guns in sputtering system was varied from 0 to 1. Each RF power was varied $0{\sim}100W$ respectively. The thickness of the films was $350{\sim}650nm$. The composit ion concentrations of the each film were measured with EPMA, AES and XPS. The low resistivity of $1-2\;{\times}\;10^3$ and an average transmittance above 80% in the visible range were attained for the films over a range of ${\delta}\;(0.3\;{\leq}\;{\delta}\;{\leq}\;0.5)$. The films also showed a high chemical stability with time and a good uniformity.

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Sputtered Al-Doped ZnO Layers for Cu2ZnSnS4 Thin Film Solar Cells

  • Lee, Kee Doo;Oh, Lee Seul;Seo, Se-Won;Kim, Dong Hwan;Kim, Jin Young
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.688-688
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    • 2013
  • Al-doped ZnO (AZO) thin films have attracted a lot of attention as a cheap transparent conducting oxide (TCO) material that can replace the expensive Sn-doped In2O3. In particular, AZO thin films are widely used as a window layer of chalcogenide-based thin film solar cells such as Cu(In,Ga)Se2 and Cu2ZnSnS4 (CZTS). Mostly important requirements for the window layer material of the thin film solar cells are the high transparency and the low sheet resistance, because they influence the light absorption by the activelayer and the electron collection from the active layer, respectively. In this study, we prepared the AZO thin films by RF magnetron sputtering using a ZnO/Al2O3 (98:2wt%) ceramic target, and the effect of the sputtering condition such as the working pressure, RF power, and the working distance on the optical, electrical, and crystallographic properties of the AZO thin films was investigated. The AZO thin films with optimized properties were used as a window layer of CZTS thin film solar cells. The CZTS active layers were prepared by the electrochemical deposition and the subsequent sulfurization process, which is also one of the cost-effective synthetic approaches. In addition, the solar cell properties of the CZTS thin film solar cells, such as the photocurrent density-voltage (J-V) characteristics and the external quantum efficiency (EQE) were investigated.

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Fabrication and Characterization of Portable Electronic Nose System for Identification of CO/HC Gases (CO/HC 가스 인식을 위한 소형 전자코 시스템의 제작 및 특성)

  • Hong, Hyung-Ki;Kwon, Chul-Han;Yun, Dong-Hyun;Kim, Seung-Ryeol;Lee, Kyu-Chung;Kim, In-Soo;Sung, Yung-Kwon
    • Journal of Sensor Science and Technology
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    • v.6 no.6
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    • pp.476-482
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    • 1997
  • A portable electronic nose system has been fabricated and characterized using an oxide semiconductor gas sensor array and pattern recognition techniques such as principal component analysis and back-propagation artificial neural network. The sensor array consists of six thick-film gas sensors whose sensing layers are Pd-doped $WO_{3}$, Pt-doped $SnO_{2}$, $TiO_{2}-Sb_{2}O_{5}-Pd$-doped $SnO_{2}$, $TiO_{2}-Sb_{2}O_{5}-Pd$-doped $SnO_{2}$ + Pd coated layer, $Al_{2}O_{3}$-doped ZnO and $PdCl_{2}$-doped $SnO_{2}$. The portable electronic nose system consists of an 16bit Intel 80c196kc as CPU, an EPROM for storing system main program, an EEPROM for containing optimized connection weights of artificial neural network, an LCD for displaying gas concentrations. As an application the system has been used to identify 26 carbon monoxide/hydrocarbon (CO/HC) car exhausting gases in the concentration range of CO 0%/HC 0 ppm to CO 7.6%/HC 400 ppm and the identification has been successfully demonstrated.

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Improvement of Cu2ZnSnS4 Solar Cell Characteristics with Zn(Ox,S1-x) Buffer Layer (Zn(Ox,S1-x) 버퍼층 적용을 통한 Cu2ZnSnS4 태양전지 특성 향상)

  • Yang, Kee-Jeong;Sim, Jun-Hyoung;Son, Dae-Ho;Lee, Sang-Ju;Kim, Young-Ill;Yoon, Do-Young
    • Korean Chemical Engineering Research
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    • v.55 no.1
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    • pp.93-98
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    • 2017
  • This experiment investigated characteristic changes in a $Cu_2ZnSnS_4$(CZTS) solar cell by applying a $Zn(O_x,S_{1-x})$ butter layer with various compositions on the upper side of the absorber layer. Among the four single layers such as $Zn(O_{0.76},S_{0.24})$, $Zn(O_{0.56},S_{0.44})$, $Zn(O_{0.33},S_{0.67})$, and $Zn(O_{0.17},S_{0.83})$, the $Zn(O_{0.76},S_{0.24})$ buffer layer was applied to the device due to its bandgap structure for suppressing electron-hole recombination. In the application of the $Zn(O_{0.76},S_{0.24})$ buffer layer to the device, the buffer layer in the device showed the composition of $Zn(O_{0.7},S_{0.3})$ because S diffused into the buffer layer from the absorber layer. The $Zn(O_{0.7},S_{0.3})$ buffer layer, having a lower energy level ($E_V$) than a CdS buffer layer, improved the $J_{SC}$ and $V_{OC}$ characteristics of the CZTS solar cell because the $Zn(O_{0.7},S_{0.3})$ buffer layer effectively suppressed electron-hole recombination. A substitution of the CdS buffer layer by the $Zn(O_{0.7},S_{0.3})$ buffer layer improved the efficiency of the CZTS solar cell from 2.75% to 4.86%.

Characteristics of ISZO and IZSO films deposited using magnetron co-sputtering system by two cathodes (마그네트론 2원 동시 방전법을 이용하여 증착한 ISZO 및 IZSO 박막의 특성에 관한 연구)

  • Lee, Dong-Yeop;Lee, Jeong-Rak;Lee, Geon-Hwan;Song, Pung-Geun
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2007.11a
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    • pp.91-92
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    • 2007
  • In-Sn-Zn-O (ISZO)박막과 In-Zn-Sn-O (IZSO)박막은 상온에서 2개의 캐소드 (DC, RF)를 이용하여 마그네트론 2원 동시 방전법에 의해 polyethylene terephthalate (PET)기판 위에 실온에서 증착되었다. ISZO 박막의 경우, Zn함량이 증가함에 따라 비저항은 증가하였지만, Zn원자의 도입에 의해 표면 조도는 개선되었다. 반면, IZSO 박막의 경우, 최저비저항 ($3.17$ ${\times}$ $10^{-4}$ ${\Omega}cm$)은 $SnO_2$ 타켓의 RF power 40W에서 얻어졌지만, Sn원자의 도입에 의해 표면 조도는 거칠어졌다. XRD 측정 결과 모든 박막은 비정질 구조로 사료되고, 가시광선 영역에서 80% 이상의 높은 투과율을 보였다.

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Stability Improvement of Amorphous-InGaZnO Thin-Film-Transistors Based SnO2 Extended-Gate Filed-Effect-Transistor Using Microwave Annealing

  • Lee, In-Gyu;Im, Cheol-Min;Jo, Won-Ju
    • Proceedings of the Korean Vacuum Society Conference
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    • 2014.02a
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    • pp.420-420
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    • 2014
  • 최근, 과학 기술이 발달함에 따라 현장에서의 실시간 검사 및 자가 지단 등 질병 치유에 대한 사람들의 관심이 증가하고 있으며, 이에 따라 의료, 환경, 산업과 같은 많은 분야에서 바이오 센서에 대한 연구가 활발하게 이루어지고 있다. 그 중, EGFET는 전해질 속의 각종 이온 농도를 전기적으로 측정하는 바이오 센서로, 외부 환경으로부터 안전하고, 제작이 쉬우며, 재활용이 가능하여 비용을 절감 할 수 있다는 장점을 가지고 있다 [1]. EGFET는 감지부와 FET부로 분리된 구조를 가지고 있으며, 감지부의 감지막으로는 Al2O3, HfO2, $TiO_2$, SnO2 와 같은 다양한 물질들이 사용되고 있다. 그 중, SnO2는 우수한 감도와 안정성을 가지고 있는 물질로 추가적인 열처리 공정 없이도 우수한 감지 특성을 나타내기 때문에 본 연구에서 감지막으로 사용하였다. 한편, EGFETs 의 FET부로는 기존의 비정질 실리콘 TFTs 에 비해 10배 이상의 높은 이동도와 온/오프 전류비를 갖는 InGaZnO 를 채널층으로 사용한 TFTs 를 사용하였다. a-IGZO 는 넓은 밴드 갭으로 인해 가시광 영역에서 투명하며, 향후 투명 바이오센서 제작 시, 물질들 사이의 반응을 전기적 신호뿐만 아니라 광학적인 분석 방법으로도 검출이 가능하기에 고 신뢰성을 갖는 센서의 제작이 가능할 것으로 기대된다. 한편, a-IGZO TFTs 의 경우 우수한 전기적 특성을 나타냄에도 불구하고 소자 동작 시 문턱 전압이 불안정하다는 단점이 있으며 [2], 이러한 문제의 개선과 향후 투명 기판 위에서의 소자 제작을 위해서는 저온 열처리 공정이 필수적이다. 따라서, 본 연구에서는 저온 열처리 공정인 u-wave 열처리를 통하여 a-IGZO TFTs 의 전기적 특성 및 안정성을 향상시켰으며, 9.51 [$cm2/V{\cdot}s$]의 이동도와 135 [mV/dec] 의 SS값, 0.99 [V]의 문턱 전압, 1.18E+08의 온/오프 전류 비를 갖는 고성능 스위칭 TFTs 를 제작하였다. 최종적으로, 제작된 a-IGZO TFTs 를 SnO2 감지막을 갖는 EGFETs 에 적용함으로써 우수한 감지 특성과 안정성을 갖는 바이오 센서를 제작하였다.

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Preparations of $(Zr_{0.08}Sn_{0.2})TiO_4$ Dielectric Powders by Coprecipitation of $(Zr^{4+}, Ti^{4+})-Hydroxides in the Presence of SnO2 Particles (부분 공침법에 의한 $(Zr_{0.08}Sn_{0.2})TiO_4$ 분말합성 및 유전특성)

  • 임경란;장진욱
    • Journal of the Korean Ceramic Society
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    • v.31 no.11
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    • pp.1293-1298
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    • 1994
  • (Zr, Sn)TiO4 powders were prepared in 0.05~0.13 ${\mu}{\textrm}{m}$ by coprecipitating (Zr4+, Ti4+)hydroxide on SnO2 particles and followed by calcination at 90$0^{\circ}C$ for 2 h. They sinter to 95% of relative density at 140$0^{\circ}C$ for 2 h. and shows dielectric constant, $\varepsilon$r=37.5 and quality factor, Qxf(GHz)=46,000. With 3 mol% of ZnO it sinters to rel=97.5%, $\varepsilon$r=39 and Qxf(GHz)=40,050 at 135$0^{\circ}C$ for 2 h., but raising sintering temperature to 140$0^{\circ}C$ deteriorates quality factor, relative density and microstructure with developing second phase.

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Nano-Floating Gate Memory Devices with Metal-Oxide Nanoparticles in Polyimide Dielectrics

  • Kim, Eun-Kyu;Lee, Dong-Uk;Kim, Seon-Pil;Lee, Tae-Hee;Koo, Hyun-Mo;Shin, Jin-Wook;Cho, Won-Ju;Kim, Young-Ho
    • JSTS:Journal of Semiconductor Technology and Science
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    • v.8 no.1
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    • pp.21-26
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    • 2008
  • We fabricated nano-particles of ZnO, $In_2O_3$ and $SnO_2$ by using the chemical reaction between metal thin films and polyamic acid. The average size and density of these ZnO, $In_2O_3$ and $SnO_2$ nano-particles was approximately 10, 7, and 15 nm, and $2{\times}10^{11},\;6{\times}10^{11},\;2.4{\times}10^{11}cm^{-2}$, respectively. Then, we fabricated nano-floating gate memory (NFGM) devices with ZnO and $In_2O_3$ nano-particles embedded in the devices' polyimide dielectrics and silicon dioxide layers as control and tunnel oxides, respectively. We measured the current-voltage characteristics, endurance properties and retention times of the memory devices using a semiconductor parameter analyzer. In the $In_2O_3$ NFGM, the threshold voltage shift (${\Delta}V_T$) was approximately 5 V at the initial state of programming and erasing operations. However, the memory window rapidly decreased after 1000 s from 5 to 1.5 V. The ${\Delta}V_T$ of the NFGM containing ZnO was approximately 2 V at the initial state, but the memory window decreased after 1000 s from 2 to 0.4 V. These results mean that metal-oxide nano-particles have feasibility to apply NFGM devices.

Gas sensing characteristics of Co3O4 thick films with metal oxides (금속산화물을 첨가한 Co3O4 후막의 가스 감지특성)

  • Jo, Chang-Yong;Park, Ki-Cheol;Kim, Jeong-Gyoo
    • Journal of Sensor Science and Technology
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    • v.18 no.1
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    • pp.54-62
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    • 2009
  • ${Co_3}{O_4}$ and ${Co_3}{O_4}$-based thick films with additives such as ${Co_3}{O_4}-{Fe_2}{O_3}$(5 wt.%), ${Co_3}{O_4}-{SnO_2}$ (5 wt.%), ${Co_3}{O_4}-{WO_3}$(5 wt.%) and ${Co_3}{O_4}$-ZnO(5 wt.%) were fabricated by screen printing method on alumina substrates. Their structural properties were examined by XRD and SEM. The sensitivities to iso-${C_4}H_{10}$, $CH_4$, CO, $NH_3$ and NO gases were investigated with the thick films heat treated at $400^{\circ}C$, $500^{\circ}C$ and $600^{\circ}C$. From the gas sensing properties of the films, the films showed p-type semiconductor behaviors. ${Co_3}{O_4}-{SnO_2}$(5 wt.%) thick film heat treated at $600^{\circ}C$ showed higher sensitivity to i-${C_4}H_{10}$ and CO gases than other thick-films. ${Co_3}{O_4}-{SnO_2}$(5 wt.%) thick film heat treated at $600^{\circ}C$ showed the sensitivity of 170 % to 3000 ppm iso-${C_4}H_{10}$ gas and 100 % to 100 ppm CO gas at the working temperature of $250^{\circ}C$. The response time to i-${C_4}H_{10}$ and CO gases showed rise time of about 10 seconds and fall time of about $3{\sim}4$ minutes. The selectivity to i-${C_4}H_{10}$ and CO gases was enhanced in the ${Co_3}{O_4}-{SnO_2}$(5 wt.%) thick film.

The Comparisons of Electrical and Optical Properties on Transprant Conducting Oxide for Silicon Heterojunction Solar Cells (실리콘 이종접합 태양전지용 투명 전도 산화막의 전기적, 광학적 특성비교)

  • Choi, Suyoung;Lee, Seunghun;Tark, Sung Ju;Parkm, Sungeun;Kim, Won Mok;Kim, Donghwan
    • 한국신재생에너지학회:학술대회논문집
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    • 2010.11a
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    • pp.57.2-57.2
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    • 2010
  • 투명전도 산화막(Transparent conducing oxide: TCO)은 태양 전지, 터치패널, 가스 센서 등 여러 분야에 적용할 수 있는 물질로서 전기 전도성과 광 투과성을 동시에 가진다. 높은 전기 전도성과 광 투과성을 가지는 Sb:$In_2O_3$(ITO)는 투명전도 산화막 재료로써 가장 일반적으로 사용되고 있으나 인듐의 매장량 한계로 인해 가격이 높다는 단점이 있다. 본 연구에서는 ITO 대체 TCO 물질인 Al doped ZnO(AZO)를 rf magnetron sputter를 이용하여 최적의 수소 도핑량을 찾아 ITO의 전기적 광학적 성질과 비교하였다. AZO 박막은(ZnO:Al2O3 2wt.%)타겟을 이용하여 heater 온도 250도에서 슬라이드 글래스 및 코닝 글래스에 증착시켰고 비교군인 ITO박막은 (In2O3:$SnO_2$ 10wt.%)타겟을 이용하여 수소 도핑 없이 350도로 증착시켰다. AZO 및 ITO 박막의 전기적 특성은 hall measurement를 이용하여 측정하였고, UV-VIS spectrophotometer로 광학적 특성을 측정하였다. 수소 도핑량이 증가함에 따라 AZO 박막의 캐리어 농도가 증가하여 전기적 특성이 향상되었고, 가시광 영역에서 높은 평균 투과도를 유지 하였다. AZO 박막과 ITO 박막의 전기적 및 광학적 특성을 비교한 결과, 최적 수소 도핑량을 가진 AZO 박막은 ITO 박막에 준하는 특성을 보였다.

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