Exciton binding energy in a pyramidal quantum dot

被引:5
|
作者
Anitha, A. [1 ,2 ]
Arulmozhi, M. [2 ]
机构
[1] Mother Teresa Womens Univ, Dept Phys, Kodaikanal 624101, India
[2] Jayaraj Annapackiam Coll Women Autonomous, Dept Phys, Periyakulam 625601, India
来源
PRAMANA-JOURNAL OF PHYSICS | 2018年 / 90卷 / 05期
关键词
Pyramid quantum dot; dielectric screening function; spatially dependent effective mass; exciton; GaAs; non-parabolicity; DEPENDENT EFFECTIVE-MASS; HYDROGENIC DONOR; DIELECTRIC FUNCTION; MAGNETIC-FIELD; WELL; NONPARABOLICITY; PRESSURE; BAND;
D O I
10.1007/s12043-018-1548-7
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
The effects of spatially dependent effective mass, non-parabolicity of the conduction band and dielectric screening function on exciton binding energy in a pyramid-shaped quantum dot of GaAs have been investigated by variational method as a function of base width of the pyramid. We have assumed that the pyramid has a square base with area a x a and height of the pyramid H = a/2. The trial wave function of the exciton has been chosen according to the even mirror boundary condition, i.e. the wave function of the exciton at the boundary could be non-zero. The results show that (i) the non-parabolicity of the conduction band affects the light hole (lh) and heavy hole (hh) excitons to be more bound than that with parabolicity of the conduction band, (ii) the dielectric screening function (DSF) affects the lh and hh excitons to be more bound than that without the DSF and (iii) the spatially dependent effective mass (SDEM) affects the lh and hh excitons to be less bound than that without the SDEM. The combined effects of DSF and SDEM on exciton binding energy have also been calculated. The results are compared with those available in the literature.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] EXCITON STATES IN A QUANTUM DOT WITH PARABOLIC CONFINEMENT
    Dogan, U.
    Sakiroglu, S.
    Yildiz, A.
    Akgungor, K.
    Epik, H.
    Sokmen, I.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2011, 25 (32): : 4489 - 4497
  • [22] Exciton binding energy in a double quantum well: effect of the barrier shift
    Ryczko, K
    Sek, G
    Misiewicz, J
    SUPERLATTICES AND MICROSTRUCTURES, 2002, 32 (01) : 73 - 77
  • [23] Effects of hydrostatic pressure, temperature, and magnetic field on the binding energy and diamagnetic susceptibility of a four-quantum-dot nanosystem
    Arraoui, R.
    Jaouane, M.
    Ed-Dahmouny, A.
    El-Bakkari, K.
    Fakkahi, A.
    Azmi, H.
    El Ghazi, H.
    Sali, A.
    JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS, 2025, 202
  • [24] Use of modified Gaussian potential to study an exciton in a spherical quantum dot
    Khordad, R.
    SUPERLATTICES AND MICROSTRUCTURES, 2013, 54 : 7 - 15
  • [25] Effects of applied magnetic field and pressure on the diamagnetic susceptibility and binding energy of donor impurity in GaAs quantum dot considering the non-parabolicity model's influence
    Maouhoubi, Ibrahim
    En-nadir, Redouane
    El Bekkari, Kamal
    Zorkani, Izeddine
    Ouazzani Tayebi Hassani, Abdallah
    Jorio, Anouar
    PHILOSOPHICAL MAGAZINE, 2023, 103 (03) : 286 - 303
  • [26] Effect of various factors on binding energy of pyramid quantum dot: pressure, temperature and impurity position
    Bahramiyan, H.
    Khordad, R.
    OPTICAL AND QUANTUM ELECTRONICS, 2014, 46 (05) : 719 - 729
  • [27] The binding energy of excitons in narrow quantum wells
    Belov, P. A.
    Khramstov, E. S.
    18TH RUSSIAN YOUTH CONFERENCE ON PHYSICS OF SEMICONDUCTORS AND NANOSTRUCTURES, OPTO- AND NANOELECTRONICS, 2017, 816
  • [28] Exciton states in a disk-like quantum dot
    Xie, WF
    PHYSICA B, 2000, 279 (04): : 253 - 256
  • [29] Fundamental differences between exciton and quantum dot duo
    Combescot, Monique
    Voliotis, Valia
    Shiau, Shiue-Yuan
    SEMICONDUCTOR SCIENCE AND TECHNOLOGY, 2020, 35 (04)
  • [30] Spin polarization of the neutral exciton in a single quantum dot
    Moskalenko, E. S.
    Larsson, L. A.
    Holtz, P. O.
    SUPERLATTICES AND MICROSTRUCTURES, 2011, 49 (03) : 294 - 299