• Title/Summary/Keyword: Quantum Confinement

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Fabrication of High Power InGaAs Diode Lasers (고출력 InGaAs레이저 다이오드 제작)

  • 계용찬;손낙진;권오대
    • Journal of the Korean Institute of Telematics and Electronics A
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    • v.31A no.10
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    • pp.79-86
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    • 1994
  • Gain-guided broad-area single quantum well separate confinement heterostructure diode lasers have been fabricated from structures grown by metal organic vapor phase epitaxy. The active layer of the epi-structure is InGaAs emitting 962-965nm and the guiding layer GaAs. The channel width is fixed to 150${\mu}$m and the cavity length varys within the range of 300~800${\mu}$m. For uncoated LD's, the output power of 0.7W has been obtaained at a pulsed current level of 2A, which results about 60% external quantum efficiency. The threshold current density is 200A/cm$^{2}$ for the cavity lengths of 800.mu.m LD's. The stain effect upon the transparent current density has been observed. The internal quantum efficiency is expected to be 88% and the internal loss to be 18$cm^{-1}$. The beam divergence has been measured to be 7$^{\circ}$to lateral and 40$^{\circ}$to transverse direction. finally, 1.2W continuous-wave output power has been obtained at a current level of 2A for AR/HR coated LD's die-bonded on Cu heat-sink and cooled by TEC.

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Quantum dot sensitized ZnO nanowire array for solar cell application

  • Seol, Min-Su;Kim, Hui-Jin;Kim, U-Seok;Yong, Gi-Jung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.02a
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    • pp.384-384
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    • 2011
  • 양자점 감응형 태양전지는 염료감응형 태양전지와 비슷한 구조를 가지지만, 유기물 염료를 대신하여 무기물 양자점을 사용함으로서 기존 유기물 염료가 가지는 한계점을 극복할 수 있다. 양자점을 광감응 염료로 사용하는 경우 양자제한효과(quantum confinement effect)에 의해 양자점의 사이즈조절만으로 밴드갭을 조절할 수 있어 광학적 특성 조절이 용이하며, 유기물 염료보다 광흡수 능력도 뛰어나다. 더불어, 하나의 광자를 흡수하여 두개 이상의 전자-정공쌍을 만들 수 있는(multiple exciton generation) 가능성이 있어 기존 태양전지가 가지는 이론적 한계효율(Shockley-Queisser limit)을 뛰어넘을 수 있다. 본 연구에서는 고효율의 양자점 감응형 태양전지 개발을 위해, ZnO 나노선 구조에 CdS, CdSe 양자점을 증착한 CdSe/CdS/ZnO 나노선 헤테로구조를 수열합성법으로 합성하였다. 증착한 CdSe/CdS 양자점이 태양광의 가시광 전 영역을 흡수하여 전자-정공을 생성하며, 세 물질 간의 밴드구조를 통해 양자점에서 생성된 전자가 ZnO 나노선으로 포집되고, 바닥전극으로 직접연결이 되어있는 1차원의 나노선 구조를 통해 전자를 효율적으로 운반할 수 있다.

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Development of CdSe/CdS Quantum Dot Co-sensitized ZnO Nanowire Solar Cell

  • Seol, Min-Su;Kim, Hui-Jin;Kim, U-Seok;Yong, Gi-Jung
    • Proceedings of the Korean Vacuum Society Conference
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    • 2011.08a
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    • pp.369-369
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    • 2011
  • 양자점 감응형 태양전지는 가시광 영역을 흡수, 이용할 수 있는 광감응 물질로 무기물 양자점을 사용하며, 이 경우 나노미터 크기의 무기물 양자점으로 인한 양자제한 효과 (quantum confinement effect)에 의해 양자점의 사이즈 조절 만으로 밴드갭을 조절할 수 있어 광학적 특성 조절이 용이하며, 하나의 광자를 흡수하여 두개 이상의 전자-정공쌍을 만들 수 있는 (multiple exciton generation) 가능성이 있어 기존 태양전지가 가지는 이론적 한계효율(Shockley-Queisser limit)을 뛰어넘을 수 있다. 본 연구에서는 양자점 및 염료 감응형 태양전지분야에서 가장 많이 사용되고 있는 TiO2 다공성 필름이 아닌, ZnO 나노선 구조를 이용하여 양자점 감응형 태양전지를 제작하였다. ZnO의 경우 TiO2보다 높은 전자이동도를 가지며, 나노선 구조가 바닥전극까지 수직 연결된 1차원의 전자전달경로를 제공하여 결과적으로 광전자 포집에 유리하다. 또한, CdS, CdSe 양자점을 동시에 사용하여 광흡수 범위를 가시광 전 영역으로 확장하였으며, 계단형 밴드구조를 통해 광전자-정공 분리 및 포집을 용이하게 하였다. 더 나아가 전해질의 조성, 나노선의 길이 등 다양한 부분을 조절하면서 각 변수가 소자의 효율에 미치는 영향을 관찰하였다.

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A Study on the Transport Mechanism of a SCH Quantum-Well Laser Diode and on the Modulation Characteristics (SCH 양자우물 레이저 다이오드의 수송기구와 변조응답 특성에 관한 연구)

  • Kim, Jong-Gi;Jeong, Jea-Yong;Suh, Chung-Ha
    • Journal of the Institute of Electronics Engineers of Korea TE
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    • v.37 no.1
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    • pp.27-34
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    • 2000
  • In this paper, carrier transport mechanism and modulation response for SCH(Separate Confinement Heterostructure) SQW(Single Quantum Well) laser diodes were studied. In order to explain carrier transport mechanism, both carrier density and current density were calculated. The recombination current density in the quantum well as a function of the SCH length was also calculated. For the modulation response, linearizing the rate equation, we calculated the bandwidth, relaxation oscillation frequency, damping factor, and the K-factor.

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Study on UV Opto-Electric Properties of ZnS:Mn/ZnS Core-Shell QD

  • Lee, Yun-Ji;Cha, Ji-Min;Yoon, Chang-Bun;Lee, Seong-Eui
    • Journal of the Korean Ceramic Society
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    • v.55 no.1
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    • pp.55-60
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    • 2018
  • In this study, quantum dots composed of $Mn^{2+}$ doped ZnS core and ZnS shell were synthesized using MPA precursor at room temperature. The ZnS: Mn/ZnS quantum dots were prepared by varying the content of MPA in the synthesis of ZnS shells. XRD, Photo-Luminescence (PL), XPS and TEM were used to characterize the properties of the ZnS: Mn/ZnS quantum dots. As a result of PL measurement using UV excitation light at 365 nm, the PL intensity was found to greatly increase when MPA was added at 15 ml, compared to the case with no MPA; the PL peaks shifted from 603 nm to 598 nm. A UV sensor was fabricated by using a sputtering process to form a Pt pattern and placing a QD on the Pt pattern. To verify the characteristics of the sensor, we measured the electrical properties via irradiation with UV, Red, Green, and Blue light. As a result, there were no reactions for the R, G, and B light, but an energy of 3.39 eV was produced with UV light irradiation. For the sensor using ZnS: Mn/ZnS quantum dots, the maximum current (A) value decreased from $4.00{\times}10^{-11}$ A to $2.62{\times}10^{-12}$ A with increasing of the MPA content. As the MPA content increases, the PL intensity improves but the electrical current value dropped because of the electron confinement effect of the core-shell.

Fabrication and Measurement of Optical Waveguide using Multi Quantum Well Intermixing (다중양자우물구조의 상호섞임을 이용한 광도파로의 제작 및 측정)

  • Yeo, Deok-Ho;Yoon, Kyung-Hun;Kim, Sung-June
    • Journal of the Korean Institute of Telematics and Electronics D
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    • v.36D no.7
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    • pp.50-55
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    • 1999
  • We have fabricated optical waveguide which utilizes intermixing of InGaAs/InGaAsP multi quantum well separate confinement heterostructure. The waveguide was fabricated by reactive ion etching technique using $CH_4/H_2$ gas mixture, and the width and depth of the waveguide ware $5{\mu}m$ and $1.2{\mu}m$, respectively. The propagation loss of the waveguide was measured by Fabry-Perot interference phenomena using tunable laser. For the waveguide after $800^{\circ}C$, 30s heat treatment, the measured loss was 3.76dB/cm and 3.95dB/cm for TE and TM mode, respectively. This value is very small compared to other waveguide made by IFVD technique. Hence, this technique can applied to integration of waveguide and electronic devices.

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Thermal conductivity of individual single-crystalline Bi nanowires grown by stress-induced recrystallization

  • Roh, Jong-Wook;Chen, Ren-Kun;Lee, Jun-Min;Ham, Jin-Hee;Lee, Seung-Hyn;Hochbaum, Allon;Hippalgaonkar, Kedar;Yang, Pei-Dong;Majumdar, Arun;Kim, Woo-Chul;Lee, Woo-Young
    • Proceedings of the Korean Institute of Electrical and Electronic Material Engineers Conference
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    • 2009.04b
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    • pp.23-23
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    • 2009
  • It has been challenging to increase the thermoelectric figure of merit ($ZT=S^2{\sigma}T/\kappa$) of materials, which determine the efficiency of thermoelectric devices, because the three parameters Seebeck coefficient (S), electrical conductivity ($\sigma$), and thermal conductivity ($\kappa$) of bulk materials are inter-dependent. With the development of nanotechnology, ZT values of nanostructured materials are predicted to be enhanced by classical size effects and quantum confinement effects. In particular, Bi nanowires were suggested as one of ideal thermoelectric materials due to the expected quantum confinement effects for the simultaneous increase in Sand. In this work, we have investigated the thermal conductivity of individual single crystalline Bi nanowires with d = 98 nm and d = 327 nm in the temperature range 40 - 300 K using MEMS devices. The for the Bi nanowire with d = 98 nm was observed to be ~ 1.6 W/m-K at 300 K, which is much lower than that of Bi bulk (8 W/m-K at 300 K). This indicates that the thermal conductivity of the Bi suppressed due to enhanced surface boundary scattering in one-dimensional structures. Our results suggest that Bi nanowires grown by stress-induced method can be used for high-efficiency thermoelectric devices.

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Research Trend and Prospect in Ferromagnetic Superconductor (강자성 초전도체의 연구동향과 전망)

  • Han, Sang-Wook
    • Journal of the Korean Magnetics Society
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    • v.22 no.2
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    • pp.66-72
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    • 2012
  • The findings of ferromagnetic superconductor have attracted much attention not only for fundamental research to investigate how the antagonistic properties of ferromagnetism and superconductivity coexist peacefully but also for potential technological applications. Firstly, in order to help for understanding the ferromagnetic superconductor, I have explained the orbital and paramagnetic pair-breaking effects of magnetic field, which breaks the superconducting Cooper pairs. In addition to such effects of magnetic field, the singlet Cooper pairs become unstable upon going through the ferromagnetic materials by the proximity effect. The proximity effect occurs at the interface of thin films composing of superconductor and ferromagnet and leads to have very short penetration depth of Cooper pairs. However, a type of odd-frequency triplet in comparison with the singlet could be very stable and has a longer effective depth. It needs to be explored for the innovative spintronic devices. Finally, various ferromagnetic superconductors coexist and the lower-dimensional materials under the Quantum confinement effect have been introduced.

Effect of Host Materials on Eelectrophosphorescence Properties of PtOEP-doped Organic Light-emitting Diodes

  • Kang, Gi-Wook;Lee, Chang-Hee
    • Journal of Information Display
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    • v.8 no.2
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    • pp.15-19
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    • 2007
  • We have studied the effect of host materials on the electrophosphorescence properties by comparing three different host materials such as tris(8-hydroxyquinoline)-aluminum (III) $(Alq_3)$, bis(8-hydroxyquinoline)-zinc (II) $(Znq_2)$, and 4,4'-N,N' dicarbazole-biphenyl (CBP) doped with a red-emissive phosphorescent dye, 2,3,7,8,12,13,17,18-octaethyl-21H,23H-porphyrin platinum (II) (PtOEP). The EL spectra show a strong red emission (peak at 650 nm) from the triplet excited state of PtOEP and a very weak emission from an electron transport layer of $Alq_3$ and a hole transport layer of N,N'-diphenyl-N,N'-bis(3-methylphenyl)-1,1-biphenyl-4,4'-diamine (TPD). We find that the triplet exciton lifetime and the quantum efficiency decrease in the order of CBP, $Alq_3$, and $Znq_2$ host materials. The results are interpreted as a poor exciton confinement in $Alq_3$, and $Znq_2$ host compared with in CBP. Therefore, it is very important for the triplet-exciton confinement in the emissive layer for obtaining a high efficiency.

Stability Assessment of Lead Sulfide Colloidal Quantum Dot Based Schottky Solar Cell

  • Song, Jung-Hoon;Kim, Jun-Kwan;An, Hye-Jin;Choi, Hye-Kyoung;Jeong, So-Hee
    • Proceedings of the Korean Vacuum Society Conference
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    • 2012.08a
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    • pp.413-413
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    • 2012
  • Lead sulfide (PbS) Colloidal quantum dots (CQDs) are promising material for the photovoltaic device due to its various outstanding properties such as tunable band-gap, solution processability, and infrared absorption. More importantly, PbS CQDs have large exciton Bohr radius of 20 nm due to the uniquely large dielectric constants that result in the strong quantum confinement. To exploit desirable properties in photovoltaic device, it is essential to fabricate a device exhibiting stable performance. Unfortunately, the performance of PbS NQDs based Schottky solar cell is considerably degraded according to the exposure in the air. The air-exposed degradation originates on the oxidation of interface between PbS NQDS layer and metal electrode. Therefore, it is necessary to enhance the stability of Schottky junction device by inserting a passivation layer. We investigate the effect of insertion of passivation layer on the performance of Schottky junction solar cells using PbS NQDs with band-gap of 1.3 eV. Schottky solar cell is the simple photovoltaic device with junction between semiconducting layer and metal electrode which a significant built-in-potential is established due to the workfunction difference between two materials. Although the device without passivation layer significantly degraded in several hours, considerable enhancement of stability can be obtained by inserting the very thin LiF layer (<1 nm) as a passivation layer. In this study, LiF layer is inserted between PbS NQDs layer and metal as an interface passivation layer. From the results, we can conclude that employment of very thin LiF layer is effective to enhance the stability of Schottky junction solar cells. We believe that this passivation layer is applicable not only to the PbS NQDs based solar cell, but also the various NQDs materials in order to enhance the stability of the device.

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