• Title/Summary/Keyword: Energy band structure

검색결과 531건 처리시간 0.021초

Hot Wall Epitaxy(HWE)범에 의한 $CuInSe_2$ 단결정 박막 성장과 가전자대 갈라짐에 대한 광전류 연구 (Growth and photocurrent study on the splitting of the valence band for $CuInSe_2$ single crystal thin film by hot wall epitaxy)

  • 홍명석;홍광준
    • 한국결정성장학회지
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    • 제14권6호
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    • pp.244-252
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    • 2004
  • $CuISe_2$ 단결정 박막은 수평 전기로에서 합성한 $CuInSe_2$ 다결정을 증발원으로하여, hot wall epitaxy(HWE) 방법으로 증발원과 기판(반절연성-GaAs(100))의 온도를 각각 $620^{\circ}C$, $410^{\circ}C$로 고정하여 단결정 박막을 성장하였다. 이때 단결정 박막의 결정성은 광발광 스펙트럼과 이중결정 선 요동곡선(DCRC) 으로 부터 구하였다. Hall 효과는 van der Pauw 방법에 의해 측정되었으며, 293K에서 운반자 농도와 이동도는 각각 $9.62\times10^{16}/\textrm{cm}^3$, 296 $\textrm{cm}^2$/Vㆍs 였다. $CuAlSe_2$/Si(Semi-Insulated) GaAs(100) 단결정 박막의 광흡수와 광전류 spectra를 293k에서 10K까지 측정하였다. 광흡수 스펙트럼으로부터 band gap $E_g$(T)는 Varshni 공식에 따라 계산한 결과 1.1851 eV-($8.99\times10^{-4} eV/K)T^2$/(T+153k)였다. 광전류 스펙트럼으로 부터 Hamilton matrix(Hopfield quasicubic mode)법으로 계산한 결과 crystal field splitting Δcr값이 0.0087eV이며 spin-orbit Δso값은 0.2329 eV임을 확인하였다. 10K일 때 광전류 봉우리들은 n = 1일때 $A_1-, B_1$-와 $C_1$-exciton봉우리임을 알았다.

Bridgman법에 의한 $Cdln_2Te_4$단결정의 성장과 가전자대 갈라짐에 대한 광전류 연구 (Photocurrent study on the splitting of the valence band and growth of $Cdln_2Te_4$ single crystal by Bridgman method)

  • 홍광준;이관교;이봉주;박진성;신동찬
    • 한국결정성장학회지
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    • 제13권3호
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    • pp.132-138
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    • 2003
  • 수평 전기로에서 $CdIn_2Te_4$ 다결정을 용응법으로 합성하고 Bridgman법으로 tetragonal structure의 $CdIn_2Te_4$ 단견정을 성장시켰다. c축에 수직한 시료의 광흡수와 광전류 spectra를 293k에서 10K까지 측정하였다. Hall효과는 van der Pauw 방법에 의해 측정되었으며, 온도에 의존하는 운반자 농도와 이동도는 293 K에서 각각 $8.61\times 10^{16}\textrm{cm}^3,\;242\textrm{cm}^$V .s였다. $CdIn_2Te_4$ 단결정의 광흡수와 광전류 spectra를 293k에서 10K까지 측정하였다. 광흡수 스펙트럼으로부터 band gap $E_g$(T)는 Varshni 공식에 따라 계산한 결과 $1.4750ev - (7.69\times10^{-3})\; ev/k)\;T^2$/(T + 2147k)이었다. 광전류 스펙트럼으로부터 Hamilton matrix(Hopfield quasicubic mode)법으로 계산한 결과 crystal field splitting Δcr값이 0.2704 eV이며 spin-orbit $\Delta$so값은 0.1465 eV임을 확인하였다. 10K일 때 광전류 봉우리들은 n : 1일때 $A_\;{1-} B_\;{1-}$$C_\;{1-}$-exciton봉우리임을 알았다

Hot Wall Epitaxy(HWE)법에 의한 $AgInS_2$단결성 박막의 성장과 가전자대 갈라짐에대한 광전류 연구 (Photocurrent Study on the Splitting of the Valence Band and Growth of $AgInS_2$GaAs Single Crystal Thin Film by Hot Wall Epitaxy)

  • 홍광준
    • 한국결정학회지
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    • 제12권4호
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    • pp.197-206
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    • 2001
  • 수평 전기로에서 AgInS₂ 다결정을 합성하여 HWE(Hot Wall Epitaxy)방법으로 AgInS₂ 단결정 박막을 반절연성 GaAs(100)기판에 성장시켰다. AgInS₂ 단결정 박막의 성장 조건은 증발원의 온도 680℃, 기판의 온도 410℃였고 성장 속도는 0.5㎛/hr였다. AgInS₂ 단결정 박막의 결정성의 조사에서 10 K에서 광발광(photoluminescence)스펙트럼이 597.8 nm(2.0741 eV)에서 exciton emission스펙트럼이 가장 강하게 나타났으며, 또한 이중결정 X-선 요동곡선(DCRC)의 박폭치(FWHM)도 121 arcsec로 가장 작아 최적 성장 조건임을 알수 있었다. Hall 효과는 van der Pauw 방법에 의해 측정되었으며, 온도에 의존하는 운반자 농도와 이동도는 293K에서 각각 9.35×10/sup 16/㎤, 294㎠/V·s 였다. AgInS₂ /SI(SEmi-Insulated) GaAs(100) 단결정 박막의 광흡수와 광전류 spectra를 293K에서 10K까지 측정하였다. 광흡수 스펙트럼으로부터 band gap E/sub g/(T)는 Varshni 공식에 따라 계산한 결과 2.1365eV-(9.89×10/sup-3/eV/K/)T²(T+2930K)이었으며 광전류 스펙트럼으로부터 Hamiltopn matrix(Hopfield quasicubic mode)법으로 계산한 결과 crystal field splitting Δcr값이 0.1541eV이며 spin-orbit Δso 값은 0.0129eV임을 확인하였다. 10K일때 광전류 봉우리들은 n=1 일때 A₁-, B-₁와 C₁-exction 봉우림을 알았다.

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HWE 방법에 의한 $AgGaS_2$단결정 박막성장과 특성에 관한 연구 (A study on the growth and characteristics of $AgGaS_2$ single crystal thin film by hot wall epitaxy)

  • 홍광준;정준우
    • 한국결정성장학회지
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    • 제8권2호
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    • pp.211-220
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    • 1998
  • 수평 전기로에서 $AgGaS_2$ 다결정을 합성하여 HWE 방법으로 $AgGaS_2$ 단결정 박막을 성장하였다. $AgGaS_2$ 단결정 박막을 성잘할 때 증발원과 기판의 온도를 각각 $590^{\circ}C$, $440^{\circ}C$로 성장하였을 때 이중결정 X-선 요동곡선(double crystal X-ray diffraction rocking curve, DCRC)의 반폭치(FWHM)값이 124 arcsec로 가장 작아 최적 성장조건이었다. 상온에서 $AgGaS_2$ 단결정 박막의 광흡수 특성으로부터 에너지 띠간격이 2.61cV였다. Band edge에 해당하는 광전도도 peak의 온도 의존성은 Varshni 관계식으로 설명되었으며, Vaeshni 관계식의 상수값은 Eg(0) = 2.7284eV, $\alpha$= 8.695$\times$10-4 eV/K, $\beta$= 332K 로 주어졌다. 광발광 봉우리는 20K에서 414.3nm(2.9926eV)와 414.1nm(2.7249eV)는 free exciton(Ex)의 upper polariton과 lower polariton인 {{{{{E}`_{x} ^{u} }}}}와 {{{{{E}`_{x} ^{L} }}}}, 423.6nm(2.9269eV)는 bound exciton emission에 의한 I로 관측되었다. 또한 455nm(2.7249eV)의 peak는 donor-acceptor pair(DAP)에 기인하는 광발광 봉우리로 관측되었다.

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Ir(001) 위의 철 단층의 자성에 대한 전자구조 연구 (Electronic Structure and Magnetism of Fe Monolayer on Ir(001))

  • 김동철;이재일
    • 한국자기학회지
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    • 제19권5호
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    • pp.171-175
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    • 2009
  • Ir(001) 표면 위에 얹혀진 철 단층의 자성을 제일원리 전자구조 계산방법을 이용하여 이론적으로 탐구하였다. 비교를 위하여 Fe와 Ir이 규칙적으로 반반 섞인 위층에 대하여도 계산하였다. 모두 Fe로 이루어진 단층의 경우 철원자의 자기모멘트는 2.95 보어마그네톤으로 비교적 큰 값을 가졌으며, Fe와 Ir이 반반 섞인 위층에서 Fe의 자기모멘트는 2.83 보어마그네톤이었다. 이러한 자성과 전자구조의 자세한 면은 계산된 상태밀도와 스핀밀도를 통하여 논의한다. 각 위층 원자의 평형위치를 구하기 위해 총에너지와 원자힘 계산을 하였다. 그 결과 Fe 위층에서의 Fe 원자위치가 Fe와 Ir이 반반 섞인 위층의 Fe 위치보다 Ir 기판에 다소 가까웠다.

PES 기판 위에 증착된 Mg0.3Zn0.7O 박막의 산소압에 따른 구조 및 광학적 특성 (The Structural and Optical Characteristics of Mg0.3Zn0.7O Thin Films Deposited on PES Substrate According to Oxygen Pressure)

  • 이현민;김상현;장낙원;김홍승
    • 한국전기전자재료학회논문지
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    • 제27권11호
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    • pp.760-765
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    • 2014
  • MgZnO has attracted a lot of attention for flexible device. In the flexible substrate, the crystal structure of the thin films as well as the surface morphology is not good. Therefore, in this study, we studied on the effects of the oxygen pressure on the structure and crystallinity of $Mg_{0.3}Zn_{0.7}O$ thin films deposited on PES substrate by using pulsed laser deposition. We used X-ray diffraction and atomic force microscopy in order to observe the structural characteristics of $Mg_{0.3}Zn_{0.7}O$ thin films. The crystallinity of $Mg_{0.3}Zn_{0.7}O$ thin films with increasing temperature was improved, Grain size and RMS of the films were increased. UV-visible spectrophotometer was used to get the band gap energy and transmittance. $Mg_{0.3}Zn_{0.7}O$ thin films showed high transmittance over 90% in the visible region. As increased working pressure from 30 mTorr to 200 mTorr, the bandgap energy of $Mg_{0.3}Zn_{0.7}O$ thin film were decreased from 3.59 eV to 3.50 eV.

Solar Energy Conversion by the Regular Array of TiO2 Nanotubes Anchored with ZnS/CdSSe/CdS Quantum Dots Formed by Sequential Ionic Bath Deposition

  • Park, Soojeong;Seo, Yeonju;Kim, Myung Soo;Lee, Seonghoon
    • Bulletin of the Korean Chemical Society
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    • 제34권3호
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    • pp.856-862
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    • 2013
  • The photoanode electrode of $TiO_2$ nanotubes (NTs) anchored with ZnS/CdSSe/CdS quantum dots (QDs) was prepared by anodization of Ti metal and successive ionic layer adsorption and reaction (SILAR) procedure. The tuning of the band gap of CdSSe was done with controlled composition of Cd, S, or Se during the SILAR. A ladder-like energy structure suitable for carrier transfer was attained with the photoanode electrode. The power conversion efficiency (PCE) of our solar cell fabricated with the regular array of $TiO_2$ NTs anchored with CdSSe/CdS or CdSe/CdS QDs [i.e., (CdSSe/CdS/$TiO_2NTs$) or (CdSe/CdS/$TiO_2NTs$)] was PCE = 3.49% and 2.81% under the illumination at 100 mW/$cm^2$, respectively. To protect the photocorrosion of our solar cell from the electrolyte and to suppress carrier recombination, ZnS was introduced onto CdSSe/CdS. The PCE of our solar cell with the structure of a photoanode electrode, (ZnS/CdSSe/CdS/$TiO_2$ NTs/Ti) was 4.67% under illumination at 100 mW/$cm^2$.

Hot Wall Epitaxy (HWE) 방법에 의한 CuGaTe$_2$ 단결정 박막 성장과 특성 (Growth and Characterization of CuGaTe$_2$ Sing1e Crystal Thin Films by Hot Wall Epitaxy)

  • 유상하;홍광준
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2002년도 하계학술대회 논문집
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    • pp.273-280
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    • 2002
  • The stochiometric mix of evaporating materials for the CuGaTe$_2$ single crystal thin films was prepared from horizontal furnance. For extrapolation method of X-ray diffraction patterns for the CuGaTe$_2$ polycrystal, it was found tetragonal structure whose lattice constant a$\_$0/ and c$\_$0/ were 6.025 ${\AA}$ and 11.931 ${\AA}$, respectively. To obtain the single crystal thin films, CuGaTe$_2$ mixed crystal was deposited on throughly etched semi-insulator GaAs(100) substrate by the Hot Wall Epitaxy (HWE) system. The source and substrate temperature were 670 $^{\circ}C$ and 410 $^{\circ}C$ respective1y, and the thickness of the single crystal thin films is 2.1 $\mu\textrm{m}$. The crystalline structure of single crystalthin films was investigated by the photoluminescence and double crystal X-ray diffraction (DCXD). Hall effect on this sample was measured by the method of van der Pauw and studied on carrier density and mobility dependence on temperature. The carrier density and mobility of CuGaTe$_2$ single crystal thin films deduced from Hall data are 8.72${\times}$10$\^$23/㎥, 3.42${\times}$10$\^$-2/㎡/V$.$s at 293K, respectively. From the photocurrent spectrum by illumination of perpendicular light on the c - axis of the CuGaTe$_2$ single crystal thin film, we have found that the values of spin orbit coupling Δs.o and the crystal field splitting Δcr were 0.0791 eV and 0/2463eV at 10K, respectively. From the PL spectra at 10K, the peaks corresponding to free bound excitons and D-A pair and a broad emission band due to SA is identified. The binding energy of the free excitons are determined to be 0.0470eV and the dissipation energy of the donor -bound exciton and acceptor-bound exciton to be 0.0490eV, 0.00558eV, respectively.

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AgI/AgCl/H2WO4 Double Heterojunctions Composites: Preparation and Visible-Light Photocatalytic Performance

  • Liu, Chunping;Lin, Haili;Gao, Shanmin;Yin, Ping;Guo, Lei;Huang, Baibiao;Dai, Ying
    • Bulletin of the Korean Chemical Society
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    • 제35권2호
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    • pp.441-447
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    • 2014
  • $AgI/AgCl/H_2WO_4$ double heterojunctions photocatalyst was prepared via deposition-precipitation followed by ion exchange method. The structure, crystallinity, morphology, chemical content and other physical-chemical properties of the samples are characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), energy dispersive x-ray spectra (EDX), UV-vis diffuse reflectance spectroscopy (DRS), and photoluminescence (PL). The photocatalytic activity of the $AgI/AgCl/H_2WO_4$ was evaluated by degrading methyl orange (MO) under visible light irradiation (${\lambda}$ > 400 nm). The double heterojunctions photocatalyst displayed more efficient photocatalytic activity than pure AgI, AgCl, $H_2WO_4$ and AgCl/$H_2WO_4$. Based on the reactive species and energy band structure, the enhanced photocatalytic activity mechanism of $AgI/AgCl/H_2WO_4$ was discussed in detail. The improved photocatalytic performance of $AgI/AgCl/H_2WO_4$ double heterojunctions could be ascribed to the enhanced interfacial charge transfer and the inhibited recombination of electron-hole pairs, which was in close relation with the $AgI/AgCl/H_2WO_4$ heterojunctions formed between AgI, AgCl and $H_2WO_4$.

Hot Wall Epitaxy (HWE) 방법으로 성장된 $CuGaTe_2/GaAs$ 에피레이어의 광학적 특성 (Optical Properties for $CuGaTe_2/GaAs$ Epilayers Grown by Hot Wall Epilaxy)

  • 홍광준;박창선
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2004년도 추계학술대회 논문집 Vol.17
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    • pp.167-170
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    • 2004
  • The stochiometric mix of evaporating materials for the $CuGaT_2$ single crystal thin films was prepared from horizontal furnance. Using extrapolation method of X-ray diffraction patterns for the $CuGaTe_2$ polycrystal, it was found tetragonal structure whose lattice constant $a_0$ and $c_0$ were 6.025 ${\AA}$ and 11.931 ${\AA}$, respectively. To obtain the single crystal thin films, $CuGaTe_2$ mixed crystal was deposited on throughly etched semi-insulator GaAs(100) substrate by the Hot Wall Epitaxy (HWE) system. The source and substrate temperature were $670^{\circ}C$ and $410^{\circ}C$ respectively, and the thickness of the single crystal thin films is $2.1{\mu}m$. The crystalline structure of single crystal thin films was investigated by the photoluminescence and double crystal X-ray diffraction (DCXD). From the photocurrent spectrum by illumination of perpendicular light on the c - axis of the $CuGaTe_2$ single crystal thin film, we have found that the values of spin orbit coupling ${\Delta}s.o$ and the crystal field splitting ${\Delta}cr$ were $0.079\underline{1}eV$ and $0.246\underline{3}eV$ at 10 K, respectively. From the PL spectra at 10K, the peaks corresponding to free bound excitons and D-A pair and a broad emission band due to SA is identified. The binding energy of the free excitons are determined to be $0.047\underline{0}eV$ and the dissipation energy of the donor-bound exciton and acceptor-bound exciton to be $0.049\underline{0}eV$, $0.055\underline{8}eV$, respectively.

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