Optimization of the optical properties of nanostructures through fast numerical approaches

被引:0
|
作者
Thierry, Francois [1 ]
Le Rouzo, Judikael [1 ]
Flory, Francois [1 ,2 ]
Berginc, Gerard [3 ]
Escoubas, Ludovic [1 ]
机构
[1] Aix Marseille Univ, IM2NP, CNRS UMR 7334, Domaine Univ St Jerome,Serv 231, F-13397 Marseille, France
[2] Ecole Cent Marseille, F-13451 Marseille, France
[3] THALES Optron SA, F-78990 Elancourt, France
来源
NANOPHOTONIC MATERIALS XI | 2014年 / 9161卷
关键词
quantum structures; EMA; nonparabolicity; CdSe; PbSe; coupled quantum wells; absorption; dielectric dipole approximation; SCHRODINGER-EQUATION; NANOPARTICLES;
D O I
10.1117/12.2061042
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
We present an improved and efficient numerical method to determine the optical properties of nanostructures starting from the electronic properties. We study the variation of electronic and optical properties induced by confinement effects in semiconductors quantum objects. We solve the time-independent Schrodinger equation with a new formulation of a shooting method under the effective mass approximation. This formulation is adapted to quantum wells, circular cross-section quantum wires and spherical quantum dots. We applied a correction on the mass to take into account the nonparabolicity of the band structure. The correction gives an accuracy comparable to more demanding calculation methods such as 8-bands k.p, tight binding or even semi-empirical pseudopotential methods. Our results remain valid even for low-bandgap materials and sizes as small as 1 nm. The calculation speed of our method allows optimization procedures that give better understanding of experimental results concerning CdS, CdSe, PbS and PbSe spherical quantum dots. We consider extensive data from the literature. We focus on the relations between the electronic structure and absorption and photoluminescence spectra measured on spin-coated PMMA thin-films containing (core)shell nanoparticles.
引用
收藏
页数:8
相关论文
共 50 条
  • [41] Optical and Nonlinear Optical Limiting Properties of AgNi Alloy Nanostructures
    R. Udayabhaskar
    P. Sreekanth
    B. Karthikeyan
    Plasmonics, 2016, 11 : 1461 - 1466
  • [42] Numerical Method Approaches in Optical Waveguide Modeling
    Ismail, Mohd Muzafar
    Zainuddin, Muhammad Noorazlan Shah
    ADVANCES IN MECHANICAL ENGINEERING, PTS 1-3, 2011, 52-54 : 2133 - 2137
  • [43] Preparation of controlled ZnO nanostructures and their optical properties
    Yang, Jun
    Wang, Yongqian
    Kong, Junhan
    Yu, Meihua
    Jin, Hongyun
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN ELECTRONICS, 2016, 27 (07) : 7227 - 7232
  • [44] Magnetically Responsive Nanostructures with Tunable Optical Properties
    Wang, Mingsheng
    Yin, Yadong
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2016, 138 (20) : 6315 - 6323
  • [45] Preparation, optical and electrical properties of PTCDA nanostructures
    Han, Yuyan
    Ning, Wei
    Du, Haifeng
    Yang, Jiyong
    Wang, Ning
    Cao, Liang
    Li, Feng
    Zhang, Fapei
    Xu, Faqiang
    Tian, Mingliang
    NANOSCALE, 2015, 7 (40) : 17116 - 17121
  • [46] Linear optical properties of Si surfaces and nanostructures
    Rossow, U
    Mantese, L
    Aspnes, DE
    Bell, KA
    Ebert, M
    PHYSICA STATUS SOLIDI B-BASIC RESEARCH, 1999, 215 (01): : 725 - 729
  • [47] Optical Properties of Au/Ag Alloy Nanostructures
    Nishijima, Y.
    2013 CONFERENCE ON LASERS AND ELECTRO-OPTICS PACIFIC RIM (CLEO-PR), 2013,
  • [48] Hierarchical ZnO Nanostructures: Growth and Optical Properties
    Umar, Ahmad
    Hajry, A. Al.
    Al-Heniti, S.
    Hahn, Y. -B.
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2008, 8 (12) : 6355 - 6360
  • [49] Structural, optical and photocatalytic properties of ZnO nanostructures
    Budhiraja, Narender
    Sapna
    Kumar, Vinod
    Tomar, Monika
    Gupta, Vinay
    Singh, S. K.
    NATIONAL CONFERENCE ON RECENT ADVANCES IN EXPERIMENTAL AND THEORETICAL PHYSICS (RAETP-2018), 2018, 2006
  • [50] Size and shape dependence of optical properties of nanostructures
    Goyal, M.
    Singh, M.
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2020, 126 (03):