Investigation of the elastic strain fields for different structure of complex self-organized low-dimension quantum wire and dot system

被引:0
|
作者
Yu, ZY [1 ]
Liu, YM [1 ]
Huang, YZ [1 ]
机构
[1] Beijing Univ Posts & Telecommun, Sch Sci, Beijing 100876, Peoples R China
关键词
strain; quantum dots; quantum wire; low dimension structure;
D O I
10.1117/12.636173
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
in this paper, we calculated the strain distribution of low dimension structure using the elastic continuum model in the first part we focused on the lens-shaped quantum dot, and discussed the strain distribution of the quantum dot with and without capping layer. In another section, we gave a detail analysis about the strain distribution for quantum wire and quantum dot intergrowth structure, and there are two situations: the first, a little bigger quantum dot grown within a single quantum wire, the second, Y shaped quantum wires where quantum dot grown in the cross section of the wires, and the angle of the Y shaped wires lessen than 12 degree. All the low-dimension strictures discussed have been observed in the laboratory. For the lens-shaped quantum dot with and without capping layer, the results showed that in both circumstances, the strain distribution would become more uniform in the quantum dot if the transverse size becomes larger. Compared with the open quantum dot (without capping layer), the capping layered quantum dot has a more sufficient strain relaxation, and even excessive strain relaxation is observed in the simulation. This phenomenon can be used to qualitative explain the quantum dot cave in and cavern out in the sequential capping layer growth interruption observed in laboratory. It is very promising for the quantum wire and quantum dot intergrowth structure. The phenomena of photoluminescence spectrum not changing with the variation of temperature have been observed recently in the intergrowth structure. For convenience, we used a simplified model to calculate such a structure, which we adopted rectangle quantum wire and rectangle quantum dot. The growth is along the [001] direction, and the wire is along the [110] direction. The results showed that the strain in quantum dot is greatly enhanced in the intergrowth structure compared with the single quantum dot system. There are strain-focusing region around the interface of quantum dot and quantum wire.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Dependence of elastic strain field on the self-organized ordering of quantum dot superlattices
    Liu, Yumin
    Yu, Zhongyuan
    Huang, Yongzhen
    JOURNAL OF UNIVERSITY OF SCIENCE AND TECHNOLOGY BEIJING, 2007, 14 (05): : 477 - 481
  • [3] Effects of elastic strain field on the self-organized ordering of quantum dot superlattices
    Liu, YM
    Yu, ZY
    ICO20: MATERIALS AND NANOSTRUCTURES, 2006, 6029
  • [4] Investigation of the elastic field distribution of self-organized quantum dot by finite element analysis
    Yang, HB
    Liu, YM
    Yu, ZY
    ICCC2004: PROCEEDINGS OF THE 16TH INTERNATIONAL CONFERENCE ON COMPUTER COMMUNICATION VOL 1AND 2, 2004, : 1308 - 1310
  • [5] The strain relaxation of InAs/GaAs self-organized quantum dot
    Liu Yu-Min
    Yu Zhong-Yuan
    Ren Xiao-Min
    CHINESE PHYSICS B, 2009, 18 (03) : 881 - 887
  • [6] The strain relaxation of InAs/GaAs self-organized quantum dot
    刘玉敏
    俞重远
    任晓敏
    Chinese Physics B, 2009, 18 (03) : 881 - 887
  • [7] Effects of elastic anisotropy on the self-organized ordering of quantum dot superlattices
    Quek, SS
    Liu, GR
    NANOTECHNOLOGY, 2003, 14 (07) : 752 - 764
  • [8] Self-Organized Low Density SiGe Quantum Dot Molecules
    Kuchinskaya, Polina A.
    Zinovyev, Vladimir A.
    Rudin, Sergey A.
    Katsyuba, Aleksey V.
    Dvurechenskii, Anatoly V.
    Mudryi, Aleksandr V.
    2015 16TH INTERNATIONAL CONFERENCE OF YOUNG SPECIALISTS ON MICRO/NANOTECHNOLOGIES AND ELECTRON DEVICES, 2015, : 42 - 44
  • [9] Ordered quantum dot arrays on self-organized strain engineered templates
    Nötzel, R
    Mano, T
    Wolter, JH
    2003 IEEE LEOS ANNUAL MEETING CONFERENCE PROCEEDINGS, VOLS 1 AND 2, 2003, : 694 - 695
  • [10] Self-organized anisotropic strain engineering:: A new concept for quantum dot ordering
    Nötzel, R
    Mano, T
    Gong, Q
    Wolter, JH
    PROCEEDINGS OF THE IEEE, 2003, 91 (11) : 1898 - 1906