Growth and characterization of triangular-shaped AlGaAs/GaAs and InGaAs/GaAs quantum wire structures

被引:0
|
作者
Kim, S [1 ]
Kim, YH
Lee, YJ
Son, CS
机构
[1] Korea Inst Sci & Technol, Semicond Devices Lab, Seoul 130650, South Korea
[2] Dong Eui Univ, Coll Engn, Dept Elect Commun Engn, Pusan 614714, South Korea
[3] Silla Univ, Dept Photon, Pusan 617736, South Korea
关键词
GaAs; AlGaAs; InGaAs; MOCVD; quantum wire;
D O I
暂无
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We have investigated the growth of quantum wire structures by using low-pressure metalorganic chemical-vapor deposition. with selective area epitaxy. Firstly, the effects of the growth parameters, such as the growth rate, the growth temperature, and the direction of the opened window, were investigated for GaAs/Al0.5Ga0.5As multilayer structures. Secondly, using the optimum growth conditions, we fabricated quantum wire structures with sharp tips and smooth side walls. In0.2Ga0.8As/GaAs quantum wire structures were grown on SiO2 masked GaAs substrates. To characterize and analyze the selectively grown structures, we used scanning electron microscopy and temperature-dependent photoluminescence. The emission peak from quantum wires was observed at 975 run. With increasing temperature, the emission intensity from the side wall quantum wells decreased abruptly, but the intensity from quantum wires decreased slowly compared to that of side wall quantum wells and even became stronger at about 50 K.
引用
收藏
页码:282 / 285
页数:4
相关论文
共 50 条
  • [31] A study of the ultrafast optical response of magnetized GaAs/AlGaAs quantum wire structures
    Gupta, Saral K.
    Sen, Pranay K.
    SUPERLATTICES AND MICROSTRUCTURES, 2007, 41 (04) : 248 - 255
  • [32] Growth of InGaAs/GaAs nanowire-quantum dots on AlGaAs/GaAs distributed Bragg reflectors for laser applications
    Tatebayashi, J.
    Kako, S.
    Ho, J.
    Ota, Y.
    Iwamoto, S.
    Arakawa, Y.
    JOURNAL OF CRYSTAL GROWTH, 2017, 468 : 144 - 148
  • [33] Growth and characterization of AlGaAs/GaAs quantum well infrared photodetectors
    Altuntas, H.
    Ozcelik, S.
    OPTOELECTRONICS AND ADVANCED MATERIALS-RAPID COMMUNICATIONS, 2010, 4 (02): : 132 - 135
  • [34] Self organization in InGaAs/AlGaAs quantum disk structures on GaAs (311)B substrates
    Ogawa, T.
    Akabori, M.
    Motohisa, J.
    Fukui, T.
    Microelectronic Engineering, 1999, 47 (01): : 231 - 233
  • [35] Self organization in InGaAs AlGaAs quantum disk structures on GaAs (311)B substrates
    Ogawa, T
    Akabori, M
    Motohisa, J
    Fukui, T
    MICROELECTRONIC ENGINEERING, 1999, 47 (1-4) : 231 - 233
  • [36] NOISE TEMPERATURE MODELING OF ALGAAS/GAAS AND ALGAAS/INGAAS/GAAS HEMTS
    ANWAR, AFM
    LIU, KW
    SOLID-STATE ELECTRONICS, 1994, 37 (09) : 1585 - 1588
  • [37] 2 SELECTIVE ETCHING SOLUTIONS FOR GAAS ON INGAAS AND GAAS/ALGAAS ON INGAAS
    HILL, DG
    LEAR, KL
    HARRIS, JS
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1990, 137 (09) : 2912 - 2914
  • [38] EXCITON PHOTOLUMINESCENCE LINEWIDTHS IN VERY NARROW ALGAAS/GAAS AND GAAS/INGAAS QUANTUM WELLS
    BERTOLET, DC
    HSU, JK
    LAU, KM
    KOTELES, ES
    OWENS, D
    JOURNAL OF APPLIED PHYSICS, 1988, 64 (11) : 6562 - 6564
  • [39] Carrier escape time in GaAs/AlGaAs and InGaAs/GaAs quantum-well lasers
    Esquivias, I
    Romero, B
    Weisser, S
    Czotscher, K
    Ralston, JD
    Larkins, EC
    Arias, J
    Schonfelder, A
    Mikulla, M
    Fleissner, J
    Rosenzweig, J
    HIGH-SPEED SEMICONDUCTOR LASER SOURCES, 1996, 2684 : 17 - 26
  • [40] Temperature behavior of unstrained (GaAs/AlGaAs) and strained (InGaAs/GaAs) quantum well bandgaps
    Herminia Balgos, Maria
    Pauline Afalla, Jessica
    Vizcara, Sheryl
    Lumantas, Deborah
    Estacio, Elmer
    Salvador, Arnel
    Somintac, Armando
    OPTICAL AND QUANTUM ELECTRONICS, 2015, 47 (08) : 3053 - 3063