Quantum confinement phenomena in nanowire superlattice structures

被引:27
|
作者
Willatzen, M
Melnik, RVN
Galeriu, C
Voon, LCLY
机构
[1] Univ So Denmark, Mads Clausen Inst Prod Innovat, DK-6400 Sonderborg, Denmark
[2] Worcester Polytech Inst, Dept Phys, Worcester, MA 01609 USA
关键词
nanowire superlattices; nanotechnology; barrier layers;
D O I
10.1016/j.matcom.2004.01.010
中图分类号
TP39 [计算机的应用];
学科分类号
081203 ; 0835 ;
摘要
Nanowire superlattices (NWSLs) are objects with a wide range of potential applications in nanoscale electronics and photonics. These objects are already grown experimentally in laboratories and studies of their properties represent an important task in nanotechnology research. Tools of mathematical modelling provide a powerful means for studying these fascinating structures with an ultimate goal of predicting their properties and understanding their limits. In this paper, we analyse finite nanowire GaAs/Al0.3Ga0.7As superlattice structures with a cylindrical cross-section and determine their electronic eigenstates and energy eigenvalues. We analyse in detail the qualitative differences, in terms of wavefunctions and energy eigenvalues, between structures containing the same number of barriers and wells (asymmetrical) and structures where the number of barrier layers is one above the number of well layers (symmetrical). We demonstrate that asymmetrical NWSL structures have well-pronounced qualitative and quantitative differences as compared to both symmetrical NWSL structures and infinite periodic NWSL structures. We show also that there exists a critical radius R-c for quantum confinement, that is the NWSL ground state is confined in GaAs (Al0.3Ga0.7As) for a nanowire of radius R above (below) R-c. In the specific case where R = R-c, the ground state is smeared out over the entire NWSL structure. (C) 2004 IMACS. Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:385 / 397
页数:13
相关论文
共 50 条
  • [21] Macroscopic quantum phenomena in Josephson structures
    Barone, A.
    Lombardi, F.
    Rotoli, G.
    Tafuri, F.
    LOW TEMPERATURE PHYSICS, 2010, 36 (10-11) : 876 - 883
  • [22] Confinement phenomena in buried oxides of SIMOX structures as affected by processing
    Afanas'ev, VV
    Revesz, AG
    Hughes, HL
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1996, 143 (02) : 695 - 700
  • [23] Miniband electronic distribution in superlattice quantum cascade structures
    Troccoli, M.
    Pellegrini, M.T.
    Spagnolo, V.
    Scamarcio, G.
    Striccoli, M.
    Tredicucci, A.
    Gmachl, C.
    Capasso, F.
    Sivco, D.L.
    Pacific Rim Conference on Lasers and Electro-Optics, CLEO - Technical Digest, 2000, : 267 - 268
  • [24] Calculation of the injection coefficients for the superlattice quantum cascade structures
    Ushakov, Dmitrii V.
    Manak, Ivan S.
    LFNM 2006: 8TH INTERNATIONAL CONFERENCE ON LASER AND FIBER-OPTICAL NETWORKS MODELING, PROCEEDINGS, 2006, : 446 - +
  • [25] Coherent quantum transport features in carbon superlattice structures
    R. McIntosh
    S. J. Henley
    S. R. P. Silva
    S. Bhattacharyya
    Scientific Reports, 6
  • [26] Terahertz electroluminescence from superlattice quantum cascade structures
    Colombelli, R
    Straub, A
    Capasso, F
    Gmachl, C
    Blakey, MI
    Sergent, AM
    Chu, SNG
    West, KW
    Pfeiffer, LN
    JOURNAL OF APPLIED PHYSICS, 2002, 91 (06) : 3526 - 3529
  • [27] Coherent quantum transport features in carbon superlattice structures
    McIntosh, R.
    Henley, S. J.
    Silva, S. R. P.
    Bhattacharyya, S.
    SCIENTIFIC REPORTS, 2016, 6
  • [28] CONFINEMENT AND TRANSPORT IN SILICON BASED QUANTUM STRUCTURES
    Berghoff, B.
    Roelver, R.
    Baetzner, D. L.
    Spangenberg, B.
    Kurz, H.
    Dimyati, A.
    Sologubenko, A.
    Mayer, J.
    PVSC: 2008 33RD IEEE PHOTOVOLTAIC SPECIALISTS CONFERENCE, VOLS 1-4, 2008, : 2120 - +
  • [29] Thermoelectric and electron heat rectification properties of quantum dot superlattice nanowire arrays
    Kuo, David M. T.
    AIP ADVANCES, 2020, 10 (04)
  • [30] MgZnO/ZnO quantum well nanowire heterostructures with large confinement energies
    Lange, M.
    Dietrich, C. P.
    Zuniga-Perez, J.
    von Wenckstern, H.
    Lorenz, M.
    Grundmann, M.
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A, 2011, 29 (03):