• 제목/요약/키워드: InAs/AlAs quantum dots

검색결과 32건 처리시간 0.041초

InP/ZnS Core/shell as Emitting Layer for Quantum Dot LED

  • Kwon, Byoung-Wook;Son, Dong-Ick;Lee, Bum-Hee;Park, Dong-Hee;Lim, Ki-Pil;Woo, Kyoung-Ja;Choi, Heon-Jin;Choi, Won-Kook
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제42회 동계 정기 학술대회 초록집
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    • pp.451-451
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    • 2012
  • Instead of a highly toxic CdSe and ZnScore-shell,InP/ZnSecore-shell quantum dots [1,2] were investigated as an active material for quantum dot light emitting diode (QD-LED). In this paper, aquantum dot light-emitting diode (QDLED), consisting of a InP/ZnS core-shell type materials, with the device structure of glass/indium-tin-oxide (ITO)/PEDOT:PSS/Poly-TPD/InP-ZnS core-shell quantum dot/Cesium carbonate(CsCO3)/Al was fabricated through a simple spin coating technique. The resulting InP/ZnS core-shell QDs, emitting near blue green wavelength, were more efficient than the above CdSe QDs, and their luminescent properties were comparable to those of CdSe QDs.Thebrightness ofInP/ZnS QDLED was maximumof 179cd/m2.

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Fabrication from the Hybrid Quantum Dots of CdTe/ZnO/G.O Quasi-core-shell-shell for the White LIght Emitting DIodes

  • Kim, Hong Hee;Lee, YeonJu;Lim, Keun yong;Park, CheolMin;Hwang, Do Kyung;Choi, Won Kook
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2016년도 제50회 동계 정기학술대회 초록집
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    • pp.189-189
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    • 2016
  • Recently, many researchers have shown an increased interest in colloidal quantum dots (QDs) due to their unique physical and optical properties of size control for energy band gap, narrow emission with small full width at half maxima (FWHM), broad spectral photo response from ultraviolet to infrared, and flexible solution processing. QDs can be widely used in the field of optoelectronic and biological applications and, in particular, colloidal QDs based light emitting diodes (QDLEDs) have attracted considerable attention as an emerging technology for next generation displays and solid state lighting. A few methods have been proposed to fabricate white color QDLEDs. However, the fabrication of white color QDLEDs using single QD is very challenging. Recently, hybrid nanocomposites consisting of CdTe/ZnO heterostructures were reported by Zhimin Yuan et al.[1] Here, we demonstrate a novel but facile technique for the synthesis of CdTe/ZnO/G.O(graphene oxide) quasi-core-shell-shell quantum dots that are applied in the white color LED devices. Our best device achieves a maximum luminance of 484.2 cd/m2 and CIE coordinates (0.35, 0.28).

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수소화 처리된 InAs/GaAs 양자점 적외선 수광소자의 전기적 특성 (Electrical Property in InAn/GaAs Quantum Dot Infrared Photodetector with Hydrogen Plasma Treatment)

  • 남형도;송진동;최원준;조운조;이정일;최정우;양해석
    • 한국진공학회지
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    • 제15권2호
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    • pp.216-222
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    • 2006
  • InGaAs/GaAs 양자 우물 내에 삽입된 InAs 양자점으로 구성된 5층의 흡수층과 $Al_{0.3}Ga_{0.7}As/GaAs$ SL (superlattice) 암전류 장벽층을 갖는 QDIP (quantum dot infrared photodetector) 구조에 대한 수소 RF 플라즈마에 의한 수소화 처리가 QDIP의 전기적. 광학적 특성에 미치는 영향에 대해 연구하였다. RF 플라즈마 수소화 처리는 양자점의 밴드구조에 영향을 미치지 않았으며 $Al_{0.3}Ga_{0.7}As/GaAs$ SL 암전류 장벽층 내의 결함 제거 및 QDIP 구조 내 결함 생성을 동시에 유도함으로써 QDIP의 전기적 특성 향상은 수소 플라즈마 처리시간의 함수임을 알았다. 20 W의 수소 RF 플라즈마를 사용했을 때, 10분간의 플라즈마 조사가 가장 좋은 전기적 특성을 제공하여 높은 암전류 때문에 원시료에서는 측정 할 수 없었던 광전류 신호를 측정 할 수 있었다.

Atomistic simulation of surface passivated wurtzite nanowires: electronic bandstructure and optical emission

  • Chimalgi, Vinay U.;Nishat, Md Rezaul Karim;Yalavarthi, Krishna K.;Ahmed, Shaikh S.
    • Advances in nano research
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    • 제2권3호
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    • pp.157-172
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    • 2014
  • The three-dimensional Nano-Electronic Modeling toolkit (NEMO 3-D) is an open source software package that allows the atomistic calculation of single-particle electronic states and optical response of various semiconductor structures including bulk materials, quantum dots, impurities, quantum wires, quantum wells and nanocrystals containing millions of atoms. This paper, first, describes a software module introduced in the NEMO 3-D toolkit for the calculation of electronic bandstructure and interband optical transitions in nanowires having wurtzite crystal symmetry. The energetics (Hamiltonian) of the quantum system under study is described via the tight-binding (TB) formalism (including $sp^3$, $sp^3s^*$ and $sp^3d^5s^*$ models as appropriate). Emphasis has been given in the treatment of surface atoms that, if left unpassivated, can lead to the creation of energy states within the bandgap of the sample. Furthermore, the developed software has been validated via the calculation of: a) modulation of the energy bandgap and the effective masses in [0001] oriented wurtzite nanowires as compared to the experimentally reported values in bulk structures, and b) the localization of wavefunctions and the optical anisotropy in GaN/AlN disk-in-wire nanowires.

디지털 합금 AlGaAs층을 이용하여 제작된 GaAs/AlGaAs DBR의 균일도 향상 (Improved Uniformity of GaAs/AlGaAs DBR Using the Digital Alloy AlGaAs Layer)

  • 조남기;송진동;최원준;이정일;전헌수
    • 한국진공학회지
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    • 제15권3호
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    • pp.280-286
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    • 2006
  • 디지털 합금 (digital-alloy) 성장방법을 사용한 AIGaAs층을 이용하여 $1.3{\mu}m$ vertical cavity surface emitting laser (VCSEL)에 사용될 수 있는 AlGaAs/GaAs distributed Bragg reflector (DBR)를 분자선 에피탁시 (molecular beam epitaxy) 방법을 통해 제작하였다. 3인치 1/4 크기의 기판에 디지털 합금 AlGaAs층을 사용한 DBR을 성장하고 기판 여러 부분에서의 반사율을 측정하여 각 부분 간의 반사율 편차가 0.35%이내임을 확인하였다. TEM 사진을 통한 계면분석을 통해 디지털 합금 AlGaAs층의 조성과 두께가 균일함을 확인하였는데, 이는 디지털 합금 AlGaAs층의 성장시 기판 표면의 온도가 불균일하더라도 크게 영향을 받지 않음을 보여준다. 이를 통해 DBR의 균일성에 따라 소자의 특성에 큰 영향을 받는 InAs 양자점을 활성층으로 사용하는 VCSEL의 수율을 향상시키는데 디지털 합금 AlGaAs층을 이용한 DBR이 응용될 수 있음을 보였다.

InP 기판에 형성한 InAs/InAlGaAs 양자점의 광학적 특성

  • 이하민;조병구;최일규;박동우;이관재;이철로;김진수;한원석;임재영
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2015년도 제49회 하계 정기학술대회 초록집
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    • pp.194.2-194.2
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    • 2015
  • 본 논문에서는 InP 기판에 자발형성법 (Self-assembled Mode)으로 성장한 InAs/InAlGaAs 양자점(Quantum Dots)의 외부 열처리 온도에 따른 광학적 특성을 논의한다. 분자선증착기 (Molecular Beam Epitaxy, VH80MBE)로 5주기 적층구조를 갖는 InAs/InAlGaAs 양자점 시료 (기준시료)를 성장 후 온도 의존성 및 여기광세기 의존성 포토루미네슨스 (photoluminescence, PL) 분광법으로 기본특성을 평가하였다. 양자점 시료를 $500{\sim}800^{\circ}C$에서 열처리를 수행하고 광학적 특성을 열처리 전과 비교하여 분석하였다. $550^{\circ}C$에서 열처리한 InAs/InAlGaAs 양자점 시료의 저온 (11K) PL 파장은 1465 nm를 보였으며, 이는 열처리를 하지 않은 기준시료의 1452 nm 보다 13 nm 장파장으로 이동하였다. 열처리 온도가 $700^{\circ}C$ 이상인 경우, 양자점 PL 파장이 다시 단파장으로 이동하는 현상을 보였지만 여전히 열처리하지 않은 기준시료보다 장파장을 나타내었다. $700^{\circ}C$에서 열처리한 양자점 시료의 저온 PL 광세기는 기준시료보다 15.5배 더 크게 나타났으며, 주변 온도가 증가할수록 더디게 감소하는 것을 확인할 수 있었다. 온도의존성 PL로부터 구한 활성화에너지 (Activation Energy)는 $700^{\circ}C$ 열처리 온도의 경우 175.9 meV를 나타내었다. InAs/InAlGaAs 양자점 시료의 열처리 온도에 따른 광특성 변화를 InAs 양자점과 InAlGaAs 장벽층 계면에서 III족 원소인 In, Al 및 Ga의 상호확산과 결함이 완화되는 현상으로 해석할 수 있다.

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InAs 양자점 형성 방법이 양자점 적외선 소자 특성에 미치는 효과 (Effect of Growth Methods of InAs Quntum Dots on Infrared Photodetector Properties)

  • 서동범;황제환;오보람;노삼규;김준오;이상준;김의태
    • 한국재료학회지
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    • 제28권11호
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    • pp.659-662
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    • 2018
  • We report the properties of infrared photodetectors based on two kinds of quantum dots(QDs): i) 2.0 ML InAs QDs by the Stranski-Krastanov growth mode(SK QDs) and ii) sub-monolayer QDs by $4{\times}[0.3ML/1nm\;In_{0.15}Ga_{0.85}As]$ deposition(SML QDs). The QD infrared photodetector(QDIP) structure of $n^+-n^-(QDs)-n^+$ is epitaxially grown on GaAs (100) wafers using molecular-beam epitaxy. Both the bottom and top contact GaAs layers are Si doped at $2{\times}10^{18}/cm^3$. The QD layers are grown with Si doping of $2{\times}10^{17}/cm^3$ and capped by an $In_{0.15}Ga_{0.85}As$ layer at $495^{\circ}C$. The photoluminescence peak(1.24 eV) of the SML QDIP is blue-shifted with respect to that (1.04 eV) of SK QDIPs, suggesting that the electron ground state of SML QDIP is higher than that of the SK QDIP. As a result, the photoresponse regime(${\sim}9-14{\mu}m$) of the SML QDIP is longer than that (${\sim}6-12{\mu}m$) of the SK QDIP. The dark current of the SML QDIP is two orders of magnitude smaller value than that of the SK QDIP because of the inserted $Al_{0.08}Ga_{0.92}As$ layer.

Fabrication of Schottky Device Using Lead Sulfide Colloidal Quantum Dot

  • Kim, Jun-Kwan;Song, Jung-Hoon;An, Hye-Jin;Choi, Hye-Kyoung;Jeong, So-Hee
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.189-189
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    • 2012
  • Lead sulfide (PbS) nanocrystal quantum dots (NQDs) are promising materials for various optoelectronic devices, especially solar cells, because of their tunability of the optical band-gap controlled by adjusting the diameter of NQDs. PbS is a IV-VI semiconductor enabling infrared-absorption and it can be synthesized using solution process methods. A wide choice of the diameter of PbS NQDs is also a benefit to achieve the quantum confinement regime due to its large Bohr exciton radius (20 nm). To exploit these desirable properties, many research groups have intensively studied to apply for the photovoltaic devices. There are several essential requirements to fabricate the efficient NQDs-based solar cell. First of all, highly confined PbS QDs should be synthesized resulting in a narrow peak with a small full width-half maximum value at the first exciton transition observed in UV-Vis absorbance and photoluminescence spectra. In other words, the size-uniformity of NQDs ought to secure under 5%. Second, PbS NQDs should be assembled carefully in order to enhance the electronic coupling between adjacent NQDs by controlling the inter-QDs distance. Finally, appropriate structure for the photovoltaic device is the key issue to extract the photo-generated carriers from light-absorbing layer in solar cell. In this step, workfunction and Fermi energy difference could be precisely considered for Schottky and hetero junction device, respectively. In this presentation, we introduce the strategy to obtain high performance solar cell fabricated using PbS NQDs below the size of the Bohr radius. The PbS NQDs with various diameters were synthesized using methods established by Hines with a few modifications. PbS NQDs solids were assembled using layer-by-layer spin-coating method. Subsequent ligand-exchange was carried out using 1,2-ethanedithiol (EDT) to reduce inter-NQDs distance. Finally, Schottky junction solar cells were fabricated on ITO-coated glass and 150 nm-thick Al was deposited on the top of PbS NQDs solids as a top electrode using thermal evaporation technique. To evaluate the solar cell performance, current-voltage (I-V) measurement were performed under AM 1.5G solar spectrum at 1 sun intensity. As a result, we could achieve the power conversion efficiency of 3.33% at Schottky junction solar cell. This result indicates that high performance solar cell is successfully fabricated by optimizing the all steps as mentioned above in this work.

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808nm GRIN-SCH 양자점 레이저 다이오드 설계 (Design of 808nm GRIN-SCH Quantum Dot Laser Diode)

  • 트레버 찬;손성훈;김경찬;김태근
    • 한국전기전자재료학회:학술대회논문집
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    • 한국전기전자재료학회 2010년도 하계학술대회 논문집
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    • pp.131-131
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    • 2010
  • The power of semiconductor laser diodes has been limited primarily by the heating effects which occur at high optical intensities. The actual limiting event can take one of a number of forms such as. catastrophic optical damage or filamentation. A general approach to this problem is to design a heterostructure which creates a high powered output while maintaining low internal optical intensities. A graded index separate confinement heterostructure (GRIN-SCH) is one such structure that accomplishes the above task. Here, the active region is sandwiched between graded index layers where the index of refraction increases nearer to the active layer. This structure has been shown to yield a high efficiency due to the confinement of both the optical power and carriers, thereby reducing the optical intensity required to achieve higher powers. The optical confinement also reinforces the optical beam quality against high power effects. Quantum dots have long been a desirable option for laser diodes due to the enhanced optical properties associated with the zeroth dimensionality. In our work, we use PICS3D software created by Crosslight Software Inc. to simulate the performance of In0.67A10.33As/A10.2Ga0.8AsquantumdotsusedwithaGRIN-SCH. The simulation tools are used to optimize the GRIN-SCH structure for high efficiency and optical beam quality.

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