• 제목/요약/키워드: ultrahigh vacuum chemical vapor deposition

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Ultrahigh Vacuum Chemical Vapor Deposition (UHVCVD)법에 의한 GaAs와 InGaAs 박막의 선택 에피택시 (Selective Area Epitaxy of GaAs and InGaAs by Ultrahigh Vacuum Chemical vapor Deposition(UHVCVD))

  • 김성복
    • 한국진공학회지
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    • 제4권3호
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    • pp.275-282
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    • 1995
  • III족 원료 가스로 triethylgallium(TEGa)과 trimethylindium(TMIn)을 사용하고 V족 원료 가스로 사전 열 분해하지 않은 arsine(AsH3)과 monoethylarsine(MEAs)을 사용하여 ultrahigh vacuum chemical vapor deposition(UHVCVD)법으로 Si3N4로 패턴된 GaAs(100)기판 위에 GaAs와 InGaAsqkr막을 선택적으로 에피택시 성장을 하였다. V족 원료 가스를 사전 열 분해하지 않으므로 넓은 성장 온도 구간과 V/lll 비율에서도 선택적으로 박막이 성장되었다. 또한 선택 에피택시의 성장 메카니즘을 규명하기 위하여 다양한 filling factor(전체면적중 opening된 면적의 비율)를 가지는 기판을 제작하여 성장에 사용하였다. UHVCVD법에서는 마스크에 면적중 opening된 면적의 비율)를 가지는 기판을 제작하여 성장에 사용하였다. UHVCVD법에서는 마스크에 입사된 분자 상태의 원료 기체가 탈착된 후 표면 이동이나 가스 상태의 확산과정 없이 마스크로부터 제거되므로 패턴의 크기와 모양에 따른 성장 속도의 변화나 조성의 변화가 없을 뿐만 아니라 chemical beam epitaxy(CBE)/metalorganic molecular beam epitaxy(MOMBE)법에서 알려진 한계 성장온도 이하에서 선택 에피택시 성장이 이루어졌다.

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초고진공 전자 사이클로트론 공명 화학 기상증착장치의 제작과 수소 플라즈마를 이용한 실리콘 기판 표면 세정화 (Manufacturing of Ultrahigh Vacuum Electron Cyclotron Resonance Chemical Vapor Deposition Reactor and Si Wafer Surface Cleaning by Hydrogen Plasma)

  • 황석희;태흥식;황기웅
    • 전자공학회논문지A
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    • 제31A권4호
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    • pp.63-69
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    • 1994
  • The Ultrahigh Vacuum Electron Cyclotron Resonance Chemical Vapor Deposition(UHV-ECRCVD) system whose base pressure is 1${\times}10^{9}$ torr has been constructed. In-situ cleaning prior to the epitaxial growth was carried out at 56$0^{\circ}C$ by ECR generated uniform hydrogen plasma whose density is $10^{10}/cm{3}$. The natural oxide was effectively removed without damage by applying positive DC bias(+10V) to the substrate. RHEED(Reflection High Energy Electron Diffraction) analysis has been used to confirm the removal of the surgace oxide and the streaky 2$\times$1 reconstruction of the Si surface, and the suppression of the substrate damage is anaylized by X-TEM(cross-sectional Transmission Electron Microscopy). Surface cleaning technique by ECR hydrogen plasma confirmed good quality epitaxial growth at low temperature.

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Low temperature growth of GaN on sapphire using remote plasma enhanced-ultrahigh vacuum chemical vapor deposition

  • Park, J.S.;Kim, M.H.;Lee, S.N.;Kim, K.K.;Yi, M.S.;Noh, D.Y.;Kim, H.G.;Park, S.J.
    • 한국진공학회지
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    • 제7권s1호
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    • pp.85-99
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    • 1998
  • A ultrahigh vacuum chemical vapor deposition(UHVCVD)/metalorganic chemical vapor deposition(MOMBE) system equipped with a radio frequency(RF)-plasma cell was employed to grow GaN layer on the sapphire at a low temperature. The x-ray photoelectron spectroscopy analysis of nitrogen composition on the nitridated sapphite surface indicated that a nitridation process is mostly affected by the RF power at low temperature. Atomic force microscope images of nitridated surface the protrusion density on the nitridated sapphire is dependent on the nitridation temperature. The crystallinity of GaN grown at $450^{\circ}C$ was found to be much improved when the sapphire was nitridated at low temperature prior to the GaN layer growth. Moreover, a strong photoluminescence spectrum of GaN grown by UHVCVD/MOMBE with a rf-nitrogen plasma was observed for the first time at room temperature.

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Plasma로 활성화된 질소 원자를 사용한 사파이어 기판 표면의 저온 질화처리의 XPS 연구 (XPS study of sapphire substrate surface nitridated by plasma activated nitrogen source)

  • 이지면;백종식;김경국;김동준;김효근;박성주
    • 한국진공학회지
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    • 제7권4호
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    • pp.320-327
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    • 1998
  • 원격 플라즈마 화학기상증착법(Remote Plasma Enhanced-Ultrahigh Vacuum Chemical Vapor Deposition)에 의해 활성화된 질소 원자를 사용하여 사파이어 기판의 표면 을 저온에서 질화처리한 후 표면의 화학적 조성을 조사하였다. 질화처리에 의해 주로 표면 에 형성된 물질은 AIN임을 X-선 광전자 분광방법(X-ray photoelectron spectroscopy:XPS) 을 사용하여 확인하였다. 또한 플라즈마의 RF 출력, 반응 온도 및 시간에 따라서 기판의 Al 과 반응한 질소의 상대적인 양과, 표면 형태를 XPS와 AFM(atomic force microscopy)을 사 용하여 조사하였다. 플라즈마에 의해서 질소는 RF출력에 따라 증가한 후 일정하게 됨을 관 찰하였다. 그러나 질화 처리 온도와 시간의 증가에 따른 AIN의 상대적인 양은 비교적 무관 함을 관찰하였다. 또한 Ar스퍼터링을 통한 XPS의 depth profile을 관찰한 결과 질화층은 깊 이에 따라 3개의 다른 층으로 이루어져 있음을 확인하였다.

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초고진공 전자 사이클로트론 화학 기상 증착 장치에 의한 저온 실리콘 에피 성장에 기판 DC 바이어스가 미치는 영향 (The Effect of Substrate DC Bias on the Low -Temperature Si homoepitaxy in a Ultrahigh Vacuum Electron Cyclotron Resonance Chemical Vapor Deposition)

  • 태흥식;황석희;박상준;윤의준;황기웅;송세안
    • 한국진공학회지
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    • 제2권4호
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    • pp.501-506
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    • 1993
  • The spatial potential distribution of electron cyclotron resonance plasma is measured as a function of tehsubstrate DC bias by Langmuir probe method. It is observed that the substrate DC bias changes the slope of the plasma potential near the subsrate, resulting in changes in flux and energy of the impinging ions across plasma $_strate boundary along themagnetric field. The effect of the substrate DC bias on the low-temperature silicon homoepitaxy (below $560^{\circ}C$) is examine dby in situ reflection high energy electron diffraction (RHEED), cross-section transmission electron microscopy (XTEM),plan-view TEM and high resolution transmision electron microscopy(HRTEM). While the polycrystalline silicon layers are grow withnegative substrate biases, the single crystaline silicon layers are grown with negative substrate biases, the singel crystalline silicon layers are grown with positive substrate biases. As the substrate bias changes form negative to positive values, the growth rate decreases. It is concluded that the control of the ion energy during plasma deposition is very important in silicon epitaxy at low temperatures below $560^{\circ}C$ by UHV-ECRCVD.VD.

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Influence of Dangling Bonds on Nanotribological Properties of Alpha-beam Irradiated Graphene

  • Hwang, Jinheui;Kim, Jong Hoon;Kwon, Sangku;Hwang, C.C.;Wu, Junqiao;Park, Jeong Young
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2013년도 제44회 동계 정기학술대회 초록집
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    • pp.265-265
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    • 2013
  • We have investigated the influences of dangling bonds generated by alpha particle irradiation on friction and adhesion properties of graphene. Single layer of graphene grown with chemical vapor deposition on copper foil was irradiated by the alpha beam with the average energy of 3.04 MeV and the irradiation dosing between $1{\times}10^{14}$ and $1{\times}10^{15}$/$cm^3$. Raman spectroscopic showed that the ${\pi}$ electron states below Fermi level arises and the $I_D$/$I_G$ increases as increasing the dosing of alpha particle irradiation. The core level X-ray photoelectron (XPS) revealed that these defects represent the creation of various carbon-related defects and dangling bond. The nanoscale tribological properties were investigated with atomic force microscopy in ultrahigh vacuum. The friction appeared to increase remarkably as increasing the amount of dosing, indicating that the dangling bonds on graphene layers enhances the energy dissipations in friction. This trend can be explained by the additional channel of energy dissipation by dangling bond or O- and H- terminated clusters created by alpha particle irradiation.

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Atomic Force Microscopy Study on Correlation between Electrical Transport and Nanomechanical properties of Graphene Layer

  • Kwon, Sang-Ku;Choi, Sung-Hyun;Chung, H.J.;Seo, S.;Park, Jeong-Young
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2010년도 제39회 하계학술대회 초록집
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    • pp.85-85
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    • 2010
  • Graphene, the building block of graphite, is one of the most promising materials due to their fascinating electronic transport properties. The pseudo-two-dimensional sp2 bonding in graphene layers yields one of the most effective solid lubricants. In this poster, we present the correlation between electrical and nanomechanical properties of graphene layer grown on Cu/Ni substrate with CVD (Chemical Vapor Deposition) method. The electrical (current and conductance) and nanomechanical (adhesion and friction) properties have been investigated by the combined apparatus of friction force microscopy/conductive probe atomic force microscopy (AFM). The experiment was carried out in a RHK AFM operating in ultrahigh vacuum using cantilevers with a conductive TiN coating. The current was measured as a function of the applied load between the AFM tip and the graphene layer. The contact area has been obtained with the continuum mechanical models. We will discuss the influence of mechanical deformation on the electrical transport mechanism on graphene layers.

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