• Title/Summary/Keyword: Bandgap

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Controlled Synthesis of Single-Walled Carbon Nanotubes

  • Park, Chong-Yun
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.2-2
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    • 2011
  • Single-walled carbon nanotubes (SWNTs) have been considered as a promising candidate for nextgeneration electronics due to its extraordinary electrical properties associated with one-dimensional structure. Since diversity in electronic structure depends on geometrical features, the major concern has been focused on obtaining the diameter, chirality, and density controlled SWNTs. Despite huge efforts, the controlled synthesis of SWNTs has not been achieved. There have been various approaches to synthesize controlled SWNTs by preparation of homogeneously sized catalyst because the SWNTs diameter highly depends on catalyst nanoparticles size. In this study, geometrically controlled SWNTs were synthesized using designed catalytic layers: (a) morphologically modified Al2O3 supporting layer (Fe/Al2O3/Si), (b) Mo capping layer (Mo/Fe/Al/Si), and (c) heat-driven diffusion and subsequent evaporation process of Fe catalytic nanoparticles (Al2O3/Fe/Al2O3/Si). These results clearly revealed that (a) the grain diameter and RMS roughness of Al2O3 supporting layer play a key role as a diffusion barrier for obtaining Fe nanoparticles with a uniform and small size, (b) a density and diameter of SWNTs can be simultaneously controlled by adjusting a thickness of Mo capping layer on Fe catalytic layer, and (c) SWNTs diameter was successfully controlled within a few A scale even with its fine distribution. This precise control results in bandgap manipulation of the semiconducting SWNTs, determined by direct comparison of Raman spectra and theory of extended tight binding Kataura plot. We suggest that these results provide a simple and possible way for the direct growth of diameter, density, and bandgap controlled SWNTs by precise controlling the formation of catalytic films, which will be in demand for future electronic applications.

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Effects of Rapid Thermal Annealing on the Properties of AZO Thin Films Grown by Radio-frequency Magnetron Sputtering (라디오파 마그네트론 스퍼터링으로 증착된 AZO 박막의 특성에 대한 급속 열처리 효과)

  • Cho, Shin-Ho
    • Journal of the Korean Vacuum Society
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    • v.18 no.5
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    • pp.377-383
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    • 2009
  • Aluminum-doped zinc oxide (AZO) thin films were deposited on sapphire substrate by using radio-frequency magnetron sputtering and were performed in the temperature range of $600-900^{\circ}C$ by rapid thermal annealing (RTA). The crystallographic structure and the surface morphology were investigated by using X-ray diffraction and scanning electron microscopy, respectively. The crystallinity of the films was improved with increasing the annealing temperature and the average size of crystalline grains was found to be 50 nm. All the thin films showed an average transmittance of 92% in the wavelength range of 400-1100 nm. As the annealing temperature was increased, the bandgap energy was decreased and the violet photoluminescence (PL) signal at 400 nm replaced the ultraviolet PL signal. The electrical properties of the thin films showed a significant dependence on the annealing temperature.

A Design of 3 dB Power Divider using Slow-wave Characteristic (Slow-wave 특성을 이용한 3 dB 전력 분배기 설계)

  • Kim, Chul-Soo;Park, Jun-Seok;Ahn, Dal;Kim, Geun-young
    • The Journal of Korean Institute of Electromagnetic Engineering and Science
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    • v.10 no.5
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    • pp.694-700
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    • 1999
  • In this paper, we studied the design of power divider using the slow-wave effect of Photonic Bandgap structure, which is etched on the ground plane. The proposed PBG structure can provides the changing of the characteristic impedance of the transmission line and the group delay velocity characteristic. Therefore we can make wider width than the width of conventional transmission line and decrease the length of transmission line. We presented the application for power divider using the characteristic impedance and electrical length extracted from scattering parameter. As adding proposed defect units, the effect of defect is studied. The experimental results show good agreements with the simulated results.

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A New Type of Yagi-Uda Antenna for High Terahertz Output Power (고출력 테라헤르츠파 발생을 위한 새로운 구조의 Yagi-Uda 안테나)

  • Han, Kyung-Ho;Park, Yong-Bae;Kim, Sang-In;Park, Ik-Mo;Lim, Han-Jo;Han, Hae-Wook
    • Korean Journal of Optics and Photonics
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    • v.19 no.1
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    • pp.9-14
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    • 2008
  • In this paper, a new type of Yagi-Uda antenna that operates in the terahertz frequencies is designed. The proposed Yagi-Uda antenna can obtain high input resistance of approximately $2000{\Omega}$ at the resonance frequency by using a full-wavelength dipole instead of a half-wavelength dipole as the driver element. The current leakage into the bias line was minimized by applying the photonic bandgap structure to the bias line. By designing the antenna on a thin substrate, the impedance lowering of an antenna caused by the relative dielectric constant of the substrate was prevented and the end-fire radiation pattern which is the original radiation characteristic of the Yagi-Uda antenna could be obtained. We expect that the proposed Yagi-Uda antenna can achieve increased terahertz output power by improving the impedance mismatching problem with the photomixer.

A Study of Improvement the Surface Properties of $Hg_{l-x}Cd_xTe$ material by using Electro-Chemical Reduction (전기화학적 환원법에 의한 $Hg_{l-x}Cd_xTe$ 재료의 표면특성 개선에 관한 연구)

  • Lee, Sang-Don;Kim, Bong-Heub;Kang, Hyung-Boo;Choi, Kyung-Ku;Jeoung, Yong-Taek;Park, Hee-Sook;Kim, Hong-Kook
    • Proceedings of the KIEE Conference
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    • 1994.07b
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    • pp.1280-1282
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    • 1994
  • The method of passivation for protecting the $Hg_{l-x}Cd_xTe$ surface is important device fabrication process, because the surface components are highly reactive leading to its chemical and electrical instability. Especially, the material of which composition is x=0.2 or 0.3, is narrow bandgap semiconductor and used as detector of infrared radiation. The device performance of narrow bandgap semiconductors are largely governed by the properties of the semiconductor surface. The electro-chemical processing of $Hg_{l-x}Cd_xTe$ allows rigorous control of the surface chemistry and provides an in-situ monitor of surface reaction. So electro-chemical reduction at specific potential can selectively eliminate the undesirable species on the surface and manipulated to reproducibly attain the desired stoichiometry. This method shows to assess the quality or chemically treated $Hg_{l-x}Cd_xTe$ good surface.

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

  • Jang, Eunseok;Kim, Sol Ji;Lee, Ji Eun;Ahn, Seung Kyu;Park, Joo Hyung;Cho, Jun-Sik
    • Current Photovoltaic Research
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    • v.2 no.3
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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.

Fabrication of Wavelength Division Demultiplexing Photodetectors Using Quantum Well Intermixing (다중양자우물의 상호 섞임 현상을 이용한 다중파장검출기의 제작)

  • Yeo, Deok-Ho;Yoon, Kyung-Hun;Kim Sung-June
    • Journal of the Institute of Electronics Engineers of Korea SD
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    • v.37 no.9
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    • pp.1-6
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    • 2000
  • Utilizing impurity free vacancy diffusion (IFVD) method, area selective intermixing of InGaAs/InGaAsP multi-quantum well (MQW) structure was done. After this, wavelength division demultiplexing waveguide type photodetectoers was integrated and measured. It showed large blue shift in bandgap due to intermixing of MQW. Photodetectors are based on typical p-i-n structure and devices having large and small bandgap areas line up linearly. Width of waveguide and length of each photodetector are 20 and 250 ${\mu}m$, respectively, TE/TM polarized light from tunable laser was butt-coupled to the photodetector and spectral response was measured. Photodetectors can demultiplexing 1480 and 1550 nm wavelength.

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$SiN_x$ 덮개층의 성장조건이 InGaAs/InGaAsP 양자우물 무질서화에 미치는 영향

  • 최원준;이희택;우덕하;김선호;김광남;조재원
    • Proceedings of the Korean Vacuum Society Conference
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    • 1999.07a
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    • pp.92-92
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    • 1999
  • 양자우물 무질서화 기술은 양자우물구조의 성장후 그 구조의 밴드갭을 국부적으로 변화시킬 수 있는 기술적 특성으로 인해 기존의 광기능 소자 제작을 위한 결정재성장방법을 대체 혹은 보완할 수 있는 장점이 있기 때문에 최근 활발히 연구되고 있다. 여러 가지 양자우물 무질서화공정중 유전체 박막을 사용하는 impurity free vacancy disordering (IFVD) 공정은 불순물이 개입하지 않는 공정으로 공정후 양질의 반도체 표면을 유지할 수 있는 장점이 있으며 고아소자 제작시 광손실의 증가를 초래하지 않는다. 이 공정은 vacancy의 source로 작용하는 유전체박막의 특성에 크게 의존하며 GaAs/AlGaAs 계열의 양자우물에서는 많은 연구가 진행되었으나, 광통신용 광소자의 제작에 사용되는 InGaAs/InGaAsP 계열의 양자우물에 대한 연구는 충분하지 않다. 그림 1은 IFVD를 위해 본 연구에서 사용된 CBE로 성장한 InGaAs/InGaAsP SQW 구조이다. 성장된 구조는 상온에서의 QW peak, λpl=1550nm 이었다. IFVD를 위한 유전체 덮개층으로는 PECVD로 성장 조정하여 박막성장시의 조건을 변화시킴으로써 유전체 덮개층 박막의 특성을 변화시켰다. 그림 2는 질소 분위기의 furnace에서 75$0^{\circ}C$로 8분간 IFVD를 수행한후 측정한 무질서화된 양자우물의 상온 PL spectrum을 보여준다. 그림에서 보는바와 같이 동일한 SiNx 덮개층을 사용하는 경우에도 적어도 24meV의 bandgap차를 갖는 양자우물을 영역을 동일한 기판상에 제작할 수 있음을 알 수 있다. 일반적으로 IFVD 방법으로 국부적으로 양자우물을 무질서화 하기 위해서는 SiNx/SiO2와 같은 강이한 박막을 사용하였지만 이 방법을 사용하는 경우 상이한 박막을 사용하는 데서 야기되는 제반 문제를 해결할 수 있을 것으로 판단된다. 따라서 이 기술은 기존의 광소자 제작을 위한 IFVD 방법의 문제점을 해결할 뿐만 아니라 결정 재성장 없이 도일한 기판상에 국부적으로 상이한 bandgap 영역을 만들 수 있기 때문에 광소자 제작에 적극 이용될 수 있다.

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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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    • v.2 no.5
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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/p-Si Heterojunction for Infrared Photodetector (MoO3 기반 실리콘 이종접합 IR 영역 광검출기 개발)

  • Park, Wang-Hee;Kim, Joondong;Choi, In-Hyuk
    • Journal of the Korean Institute of Electrical and Electronic Material Engineers
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    • v.30 no.8
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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.