• Title/Summary/Keyword: Metal Chalcogenide

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Synthesis of CoSe2/RGO Composites and Its Application as a Counter Electrode for Dye-Sensitized Solar Cells

  • Ko, Yohan;Choi, Wooyeol;Kim, Youbin;Lee, Chanyong;Jun, Yongseok;Kim, Junhee
    • Journal of Electrochemical Science and Technology
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    • v.10 no.3
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    • pp.313-320
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    • 2019
  • In this study, cobalt diselenide ($CoSe_2$) and the composites ($CoSe_2@RGO$) of $CoSe_2$ and reduced graphene oxide (RGO) were synthesized by a facile hydrothermal reaction using cobalt ions and selenide source with or without graphene oxide (GO). The formation of $CoSe_2@RGO$ composites was identified by analysis with X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), Raman spectroscopy and scanning electron microscopy (SEM). Electrochemical analyses demonstrated that the $CoSe_2@RGO$ composites have excellent catalytic activity for the reduction of $I_3{^-}$, possibly indicating a synergetic effect of $CoSe_2$ and RGO. As a consequence, the $CoSe_2@RGO$ composites were applied as a counter electrode in DSSC for the reduction of redox couple electrolyte, and exhibiting the comparable power conversion efficiency (7.01%) to the rare metal platinum (Pt) based photovoltaic device (6.77%).

전구체 박막 증착법을 이용한 CuInSe2 박막 합성 및 결정화 메커니즘 분석

  • Lee, Dong-Uk;Choe, Yeong-U;Yong, Gi-Jung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.367-367
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    • 2011
  • 태양전지에서 광흡수층으로 널리 쓰이는 CuInSe2은 전기적, 광학적 특성이 우수하고 20%대의 고효율을 기록하며 큰 관심을 받고 있다. 하지만 증발법 및 스퍼터링 등의 기존 진공, 고온 기반 공정 기술은 원천적인 공정비용 절감이 어렵고, 고가의 희귀원소인 In 등의 원료 활용도가 떨어져 실험실 수준에 머무르고 있다. 최근 공정 비용을 최소화와 원료 활용을 극대화를 통해 고효율 CIGS 박막형 태양전지를 제조하기 위해 비진공 방식의 전구체 박막 코팅 및 열처리를 통한 광흡수층 제조에 관한 연구가 활발히 진행되고 있으며, 본 연구는 doctor-blade coating을 이용하여 전구체 박막을 기판 위에 형성하고 열처리 온도에 따른 박막 물성 변화를 관찰함으로써 박막 형성 메커니즘을 밝히는데 주력하였다. 또한 합성된 박막의 전기적, 광학적 특성을 분석하여 태양전지 응용 가능성을 살펴보았다. 본 연구에서는 SEM, XRD, TGA 분석을 통해 Cu, In, Se 전구체들이 각각 binary phase, 즉, Cu2-xSe 및 In2Se3의 metal chalcogenide을 형성하고, 고온에서 서로 결합하여 CuInSe2로 결정화 되는 현상을 관찰하였다. 또한 합성된 CIS 박막은 근적외선 및 가시광 영역에서 높은 광흡수도를 보였으며, 전기적으로 Mo 전극과 ohmic contact을 이룸으로써 CIGS계 태양전지의 광흡수층으로의 적합성을 나타내었다.

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ZnO 나노구조를 이용한 $CuInS_2$ Superstrate 태양전지 제조

  • Lee, Dong-Uk;Yong, Gi-Jung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2013.02a
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    • pp.665-665
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    • 2013
  • 박막형 태양전지에서 광흡수층으로 널리 쓰이는 metal chalcogenide 화합물 중, CuInS2(CIS)은 전기적, 광학적 특성이 우수하여 널리 연구되고 있다. CIS계 태양전지 최근 동시 증발법을 이용하여 20.3%의 고효율을 기록한 바 있으나 기존 진공, 고온 기반 공정 기술은 초기 투자 비용이 높고, 고가의 희귀원소인 In 등의 원료 활용도가 떨어져 원가 절감에 있어 한계가 있다. 이에 따라 제조 비용 절감과 원료 사용 효율을 향상시키기 위해 비진공 방식을 이용한 광흡수 층 증착 공정에 관한 연구가 활발히 진행되고 있다. 본 연구에서는 상온, 상압, 저온에서 합성이 가능한 CIS계 광흡수층을 전자 전달 및 빛 포집에 유리한 ZnO 나노구조와 응용함으로써 superstrate 구조의 박막형 태양전지를 구현하고 그 특성을 평가하였다. CIS 박막 태양전지에서 투명창층으로 쓰이는 ZnO 박막을 수열합성법으로 합성된 ZnO 나노로드 어레이로 대체하여 빛 산란 효과를 줄이고, 전하 수집 및 이동 효과를 극대화하였다. 또한 CIS 광흡수층은amine계 용매와 금속염 및 thiourea를 조합하여 저온에서 코팅 후 건조시켜 박막을 제조하였다. 각 요소 박막들의 물성을SEM, XRD, UV-transmittance 분석을 통해 살펴보았으며, 소면적 태양전지 제작을 통해 박막 구조 대비 30배 이상의 광변환효율(최고효율 3.30%)을 기록하였다.

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Improving the Reliability by Straight Channel of As2Se3-based Resistive Random Access Memory (As2Se3 기반 Resistive Random Access Memory의 채널 직선화를 통한 신뢰성 향상)

  • Nam, Ki-Hyun;Kim, Chung-Hyeok
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.29 no.6
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    • pp.327-331
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    • 2016
  • Resistive random access memory (ReRAM) of metallic conduction channel mechanism is based on the electrochemical control of metal in solid electrolyte thin film. Amorphous chalcogenide materials have the solid electrolyte characteristic and optical reactivity at the same time. The optical reactivity has been used to improve the memory switching characteristics of the amorphous $As_2Se_3$-based ReRAM. This study focuses on the formation of holographic lattices patterns in the amorphous $As_2Se_3$ thin film for straight conductive channel. The optical parameters of amorphous $As_2Se_3$ thin film which is a refractive index and extinction coefficient was taken by n&k thin film analyzer. He-Cd laser (wavelength: 325 nm) was selected based on these basic optical parameters. The straighten conduction channel was formed by holographic lithography method using He-Cd laser.$ Ag^+$ ions that photo-diffused periodically by holographic lithography method will be the role of straight channel patterns. The fabricated ReRAM operated more less voltage and indicated better reliability.

Improved Uniformity of Resistive Switching Characteristics in Ge0.5Se0.5-based ReRAM Device Using the Ag Nanocrystal (Ag Nanocrystal이 적용된 Ge0.5Se0.5-based ReRAM 소자의 Uniformity 특성 향상에 대한 연구)

  • Chung, Hong-Bay;Kim, Jang-Han;Nam, Ki-Hyun
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.27 no.8
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    • pp.491-496
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    • 2014
  • The resistive switching characteristics of resistive random access memory (ReRAM) based on amorphous $Ge_{0.5}Se_{0.5}$ thin films have been demonstrated by using Ti/Ag nanocrystals/$Ge_{0.5}Se_{0.5}$/Pt structure. Ag nanocrystals (Ag NCs) were spread on the amorphous $Ge_{0.5}Se_{0.5}$ thin film and they played the role of metal ions source. As a result, comparing the conventional Ag/$Ge_{0.5}Se_{0.5}$/Pt structure, this Ti/Ag NCs/$Ge_{0.5}Se_{0.5}$/Pt ReRAM device exhibits the highly uniform bipolar resistive switching (BRS) characteristics, such as the operating voltages, and the resistance values. At the same time, a stable DC endurance(> 100 cycles), and the excellent data retention (> $10^4$ sec) properties were found from the Ti/Ag NCs/$Ge_{0.5}Se_{0.5}$/Pt structured ReRAM device.

Application of 2D materials to the defense area (2차원 나노소재의 국방분야 적용방안)

  • Jungho Bae
    • Journal of The Korean Institute of Defense Technology
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    • v.6 no.1
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    • pp.1-6
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    • 2024
  • Two-dimensional materials, which have a crystal structure in a two-dimensional plane, are attracting attention as next-generation materials in nanotechnology, from Graphene, first discovered in 2004, to MXene, discovered in 2011. In this study, Among new 2D materials, we introduce the characteristics of Graphene, MXene, hexagonal boron nitride, and transition metal chalcogenide, which are being studied extensively, and introduce technologies that can be used to apply each 2D material to the defense field. We would like to present a method that can be applied to next-generation weapon systems and war-power support systems.

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Transition Metal Dichalcogenide Nanocatalyst for Solar-Driven Photoelectrochemical Water Splitting (전이금속 디칼코제나이드 나노촉매를 이용한 태양광 흡수 광화학적 물분해 연구)

  • Yoo, Jisun;Cha, Eunhee;Park, Jeunghee;Lim, Soo A
    • Journal of the Korean Electrochemical Society
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    • v.23 no.2
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    • pp.25-38
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    • 2020
  • Photoelectrochemical water splitting has been considered as the most promising technology for generating hydrogen energy. Transition metal dichalcogenide (TMD) compounds have currently attracted tremendous attention due to their outstanding ability towards the catalytic water-splitting hydrogen evolution reaction (HER). Herein, we report the synthesis method of various transition metal dichalcogenide including MoS2, MoSe2, WS2, and WSe2 nanosheets as excellent catalysts for solar-driven photoelectrochemical (PEC) hydrogen evolution. Photocathodes were fabricated by growing the nanosheets directly onto Si nanowire (NW) arrays, with a thickness of 20 nm. The metal ion layers were formed by soaking the metal chloride ethanol solution and subsequent sulfurization or selenization produced the transition metal chalcogenide. They all exhibit excellent PEC performance in 0.5 M H2SO4; the photocurrent reaches to 20 mA cm-2 (at 0 V vs. RHE) and the onset potential is 0.2 V under AM1.5 condition. The quantum efficiency of hydrogen generation is avg. 90%. The stability of MoS2 and MoSe2 is 90% for 3h, which is higher than that (80%) of WS2 and WSe2. Detailed structure analysis using X-ray photoelectron spectroscopy for before/after HER reveals that the Si-WS2 and Si-WSe2 experience more oxidation of Si NWs than Si-MoS2 and Si-MoSe2. This can be explained by the less protection of Si NW surface by their flake shape morphology. The high catalytic activity of TMDs should be the main cause of this enhanced PEC performance, promising efficient water-splitting Si-based PEC cells.