• 제목/요약/키워드: wide bandgap

검색결과 140건 처리시간 0.025초

EFG 방법으로 성장한 β-Ga2O3 단결정의 영역별 품질 분석 (Spatial variation in quality of Ga2O3 single crystal grown by edge-defined film-fed growth method)

  • 박수빈;제태완;장희연;최수민;박미선;장연숙;문윤곤;강진기;이원재
    • 한국결정성장학회지
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    • 제32권4호
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    • pp.121-127
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    • 2022
  • 초광역대 반도체인 β-Ga2O3은 고전력 반도체 소재에 대한 유망한 응용으로 인해 큰 주목을 받고 있다. 5가지 다른 다형 중 가장 안정적인 상인 β-Ga2O3는 4.9 eV의 넓은 밴드갭과 8 MV/cm의 높은 항복 전계를 갖는다. 또한, 이는 용융 소스로부터 성장될 수 있어 전력반도체용 SiC, GaN 및 다이아몬드와 같은 다른 와이드 밴드갭 반도체보다 더 높은 성장률과 더 낮은 제조 비용으로 성장이 가능하다. 이 연구에서 β-Ga2O3 단결정 성장은 EFG(edge-defined film-fed growth) 방법에 의해 성장되었다. 성장 방향과 주면을 각각 β-Ga2O3 결정의 [010] 방향과 (100)면으로 성장하였다. Raman 분석의 스펙트럼으로 β-Ga2O3 잉곳의 결정상과 불순물을 확인하였고, 고해상도 X선 회절(HRXRD)을 이용하여 결정 품질과 결정 방향을 분석하였다. 또한 EFG 방법으로 성장한 β-Ga2O3 리본형태의 잉곳을 각 위치별로 결정 품질과 다양한 특성을 체계적으로 분석하였다.

a-SiOx:H/c-Si 구조를 통한 향상된 밴드 오프셋과 터널링에 대한 전기적 특성 고찰 (Electrical Properties for Enhanced Band Offset and Tunneling with a-SiOx:H/a-si Structure)

  • 김홍래;팜뒤퐁;오동현;박소민;라벨로 마테우스;김영국;이준신
    • 한국전기전자재료학회논문지
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    • 제34권4호
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    • pp.251-255
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    • 2021
  • a-Si is commonly considered as a primary candidate for the formation of passivation layer in heterojunction (HIT) solar cells. However, there are some problems when using this material such as significant losses due to recombination and parasitic absorption. To reduce these problems, a wide bandgap material is needed. A wide bandgap has a positive influence on effective transmittance, reduction of the parasitic absorption, and prevention of unnecessary epitaxial growth. In this paper, the adoption of a-SiOx:H as the intrinsic layer was discussed. To increase lifetime and conductivity, oxygen concentration control is crucial because it is correlated with the thickness, bonding defect, interface density (Dit), and band offset. A thick oxygen-rich layer causes the lifetime and the implied open-circuit voltage to drop. Furthermore the thicker the layer gets, the more free hydrogen atoms are etched in thin films, which worsens the passivation quality and the efficiency of solar cells. Previous studies revealed that the lifetime and the implied voltage decreased when the a-SiOx thickness went beyond around 9 nm. In addition to this, oxygen acted as a defect in the intrinsic layer. The Dit increased up to an oxygen rate on the order of 8%. Beyond 8%, the Dit was constant. By controlling the oxygen concentration properly and achieving a thin layer, high-efficiency HIT solar cells can be fabricated.

Photoelectrochemical cells based on oxide semiconductors

  • 윤영대;백승기;김주성;김영빈;조형균
    • 한국표면공학회:학술대회논문집
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    • 한국표면공학회 2018년도 춘계학술대회 논문집
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    • pp.50.2-50.2
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    • 2018
  • The demand for steady and dependable power sources is very high in the field of sustainable energy because of the limited amount of fossil fuels reserves. Among several sustainable alternatives, solar energy may be the most efficient solution because it constitutes the largest renewable energy source. So far, the only practical way to store such large amounts of energy has been to use a chemical energy carrier likewise a fuel. In various solar energy to power conversion systems, the photoelectrochemical (PEC) splitting of water into hydrogen and oxygen by the direct use of solar energy is an ideal process. It is a renewable method of hydrogen production integrated with solar energy absorption and water electrolysis using a single photoelectrode. Previous studies on photoelectrode films for PEC water splitting cells have been mainly focused on synthesizing oxide semiconductors with wide band gaps, such as TiO2(3.2eV), WO3(2.8eV), and Fe2O3(2.3eV). Unfortunately, these pristine oxide photoanodes without any catalysts have relatively low photocurrent densities because of the inherent limitation of insufficient visible light absorption due to the wide bandgap. Specifically, there is a tradeoff between high photocurrent and photoelectrochemical corrosion behavior, which is representative of figures of meritf or PEC materials.

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고휘도 LED의 구조 해석 및 설계 (Analysis and Design of High-Brightness LEDs)

  • 이성재;송석원
    • 전자공학회논문지D
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    • 제35D권6호
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    • pp.79-91
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    • 1998
  • Escape cone 개념에 바탕을 둔 구조 해석을 통해 고휘도 LED의 설계 이론을 확립하였다. 확립된 설계이론에 근거하여 최근까지 개발된 중요한 고휘도 LED의 구조들을 비교/분석하였으며, 각각의 구조에서 출력결합효율을 대략적으로 계산하였다. Ohmic전극 영역에서의 광자 손실이 매우 심각한 것으로 알려진 AlGaAs 또는 InGaAIP LED의 경우, window layer(WL)와 transparent substrate(TS)를 활용하게 되면 전극에 의한 광자의 차폐효과가 크게 감소되어 발광효율이 크게 개선된다. 청색으로부터 녹색까지 상당히 넓은 영역에 걸친 발광특성을 갖는 InGaN LED 경우의 중요한 차이점의 하나는 WL를 사용하지 않으면서도 괄목할만한 발광효율을 얻어 낼 수 있다는 사실인데, 그 원인은 GaN와 같은 넓은 bandgap을 갖는 반도체의 경우 ohmic 전극에서의 광자의 손실이 상대적으로 미미하며 그 결과로 전극에 의한 광자의 차폐현상이 상대적으로 큰 문제가 되지 않기 때문인 것으로 분석된다.

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유연기판을 이용한 고효율 나노결정질 실리콘 박막 태양전지 제조 (Fabrication of Highly Efficient Nanocrystalline Silicon Thin-Film Solar Cells Using Flexible Substrates)

  • 장은석;김솔지;이지은;안승규;박주형;조준식
    • Current Photovoltaic Research
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    • 제2권3호
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    • pp.103-109
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    • 2014
  • Highly efficient hydrogenated nanocrystalline silicon (nc-Si:H) thin-film solar cells were prepared on flexible stainless steel substrates using plasma-enhanced chemical vapor deposition. To enhance the performance of solar cells, material properties of back reflectors, n-doped seed layers and wide bandgap nc-SiC:H window layers were optimized. The light scattering efficiency of Ag back reflectors was improved by increasing the surface roughness of the films deposited at elevated substrate temperatures. Using the n-doped seed layers with high crystallinity, the initial crystal growth of intrinsic nc-Si:H absorber layers was improved, resulting in the elimination of the defect-dense amorphous regions at the n/i interfaces. The nc-SiC:H window layers with high bandgap over 2.2 eV were deposited under high hydrogen dilution conditions. The vertical current flow of the films was enhanced by the formation of Si nanocrystallites in the amorphous SiC:H matrix. Under optimized conditions, a high conversion efficiency of 9.13% ($V_{oc}=0.52$, $J_{sc}=25.45mA/cm^2$, FF = 0.69) was achieved for the flexible nc-Si:H thin-film solar cells.

The a-Si:H/poly-Si Heterojunction Solar Cells

  • Kim, Sang-Su;Kim, do-Young;Lim, Dong-Gun;Junsin Yi;Lee, Jae-Choon;Lim, Koeng-Su
    • Journal of Electrical Engineering and information Science
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    • 제2권5호
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    • pp.65-71
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    • 1997
  • We present heterojunction solar cells with a structure of metal/a-Si:H(n-i-p)/poly-Si(n-p)/metal for the terrestrial applications. This cell consists fo two component cells: a top n-i-p junction a-Si:Hi cell with wide-bandgap 1.8eV and a bottom n-p junction poly-Si cell with narrow-bandgap 1.1eV. The efficiency influencing factors of the solar cell were investigated in terms of simulation an experiment. Three main topics of the investigated study were the bottom cell with n-p junction poly-Si, the top a-Si:H cell with n-i-p junction, and the interface layer effects of heterojunction cell. The efficiency of bottom cell was improved with a pretreatment temperature of 900$^{\circ}C$, surface polishing, emitter thickness of 0.43$\mu\textrm{m}$, top Yb metal, and grid finger shading of 7% coverage. The process optimized cell showed a conversion efficiency about 16%. Top cell was grown by suing a photo-CVD system which gave an ion damage free and good p/i-a-Si:H layer interface. The heterojunction interface effect was examined with three different surface states; a chemical passivation, thermal oxide passivation, and Yb metal. the oxide passivated cell exhibited the higher photocurrent generation and better spectral response.

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MoO3 기반 실리콘 이종접합 IR 영역 광검출기 개발 (MoO3/p-Si Heterojunction for Infrared Photodetector)

  • 박왕희;김준동;최인혁
    • 한국전기전자재료학회논문지
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    • 제30권8호
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    • pp.525-529
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    • 2017
  • Molybdenum oxide ($MoO_3$) offers pivotal advantages for high optical transparency and low light reflection. Considering device fabrication, n-type $MoO_3$ semiconductor can spontaneously establish a junction with p-type Si. Since the energy bandgap of Si is 1.12 eV, a maximum photon wavelength of around 1,100 nm is required to initiate effective photoelectric reaction. However, the utilization of infrared photons is very limited for Si photonics. Hence, to enhance the Si photoelectric devices, we applied the wide energy bandgap $MoO_3$ (3.7 eV) top-layer onto Si. Using a large-scale production method, a wafer-scale $MoO_3$ device was fabricated with a highly crystalline structure. The $MoO_3/p-Si$ heterojunction device provides distinct photoresponses for long wavelength photons at 900 nm and 1,100 nm with extremely fast response times: rise time of 65.69 ms and fall time of 71.82 ms. We demonstrate the high-performing $MoO_3/p-Si$ infrared photodetector and provide a design scheme for the extension of Si for the utilization of long-wavelength light.

강유전체 BiFeO3가 증착된 TiO2 전극을 이용한 염료감응형 태양전지의 효율 향상 (Ferroelectric BiFeO3-coated TiO2 Electrodes for Enhanced Photovoltaic Properties of Dye-sensitized Solar Cells)

  • 주호용;홍수봉;이호상;전지훈;박배호;홍성철;최택집
    • 한국전기전자재료학회논문지
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    • 제26권3호
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    • pp.198-203
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    • 2013
  • Dye-sensitized solar cells (DSSCs) based on titanium dioxide ($TiO_2$) have been extensively studied because of their promising low-cost alternatives to conventional semiconductor based solar cells. DSSCs consist of molecular dye at the interface between a liquid electrolyte and a mesoporous wide-bandgap semiconductor oxide. Most efforts for high conversion efficiencies have focused on dye and liquid electrolytes. However, interface engineering between dye and electrode is also important to reduce recombination and improve efficiency. In this work, for interface engineering, we deposited semiconducting ferroelectric $BiFeO_3$ with bandgap of 2.8 eV on $TiO_2$ nanoparticles and nanotubes. Photovoltaic properties of DSSCs were characterized as a function of thickness of $BiFeO_3$. We showed that ferroelectric $BiFeO_3$-coated $TiO_2$ electrodes enable to increase overall efficiency of DSSCs, which was associated with efficient electron transport due to internal electric field originating from electric polarization. It was suggested that engineering the dye-$TiO_2$ interface using ferroelectric materials as inorganic modifiers can be key parameter for enhanced photovoltaic performance of the cell.

Edge perturbation on electronic properties of boron nitride nanoribbons

  • K.L. Wong;K.W. Lai;M.W. Chuan;Y. Wong;A. Hamzah;S. Rusli;N.E. Alias;S. Mohamed Sultan;C.S. Lim;M.L.P. Tan
    • Advances in nano research
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    • 제15권5호
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    • pp.385-399
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    • 2023
  • Hexagonal boron nitride (h-BN), commonly referred to as Boron Nitride Nanoribbons (BNNRs), is an electrical insulator characterized by high thermal stability and a wide bandgap semiconductor property. This study delves into the electronic properties of two BNNR configurations: Armchair BNNRs (ABNNRs) and Zigzag BNNRs (ZBNNRs). Utilizing the nearest-neighbour tight-binding approach and numerical methods, the electronic properties of BNNRs were simulated. A simplifying assumption, the Hamiltonian matrix is used to compute the electronic properties by considering the self-interaction energy of a unit cell and the interaction energy between the unit cells. The edge perturbation is applied to the selected atoms of ABNNRs and ZBNNRs to simulate the electronic properties changes. This simulation work is done by generating a custom script using numerical computational methods in MATLAB software. When benchmarked against a reference study, our results aligned closely in terms of band structure and bandgap energy for ABNNRs. However, variations were observed in the peak values of the continuous curves for the local density of states. This discrepancy can be attributed to the use of numerical methods in our study, in contrast to the semi-analytical approach adopted in the reference work.

분위기 산소압변화에 따른 ZnO박막의 UV발광 특성분석 (UV emission characterization of ZnO thin films depending on the variation of oxygen pressure)

  • 배상혁;이상렬
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 1999년도 하계학술대회 논문집 D
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    • pp.1523-1525
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    • 1999
  • ZnO is a wide-bandgap II-VI semiconductor and has a variety of potential application. ZnO exhibits good piezoelectric, photoelectric and optic properties, and is good for a electroluminescence device. ZnO films have been deposited at (0001) shappire by PLD technique. Chamber was evacuated by turbomolecular pump to a base pressure of $1{\times}10^{-6}$ Torr Nd:YAG pulsed laser was operated at ${\lambda}=355nm$. The ZnO films were deposited at oxygen pressures from base to 500 mTorr. The substrate temperatures was increased from $200^{\circ}C$ to $700^{\circ}C$. At aleady works, UV emission and green-yellow PL was observed. In this work, ZnO films showed UV, violet, green and yellow emissions. UV emission was enhanced by increasing partial oxygen pressure. We investigated relationship between partial oxygen pressure and UV emission.

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