Bismides: 2D structures and quantum dots

被引:4
|
作者
Pacebutas, Vaidas [1 ]
Butkute, Renata [1 ]
Cechavicius, Bronislovas [1 ]
Stanionyte, Sandra [1 ]
Pozingyte, Evelina [1 ]
Skapas, Martynas [1 ]
Selskis, Algirdas [1 ]
Geizutis, Andrejus [1 ]
Krotkus, Arunas [1 ]
机构
[1] Ctr Phys Sci & Technol, Sauletekio Av 3, LT-10257 Vilnius, Lithuania
关键词
GaAsBi; GaInAsBi; quantum wells; quantum dots; photoluminescence; MBE; WELLS; PHOTOLUMINESCENCE; EPITAXY; BISMUTH;
D O I
10.1088/1361-6463/aa7bdb
中图分类号
O59 [应用物理学];
学科分类号
摘要
The growth and characterization of ternary GaAsBi and quaternary GaInAsBi compound quantum wells (QWs) on GaAs substrates is presented in this study. The influence of technological parameters, such as different growth modes, substrate temperatures, beam equivalent pressure ratios and thermal treating on structural and luminescent properties of QWs is discussed. The complex structural investigations using x-ray diffraction, atomic force microscopy and high-resolution transmission electron microscopy revealed high crystal structure, smooth surfaces and abrupt interfaces of both GaAsBi and GaInAsBi QWs. The temperature dependent photoluminescence measurements demonstrated emission wavelengths up to 1.43 mu m in room temperature PL spectra measured for GaAsBi/GaAs QWs containing 12% Bi, whereas GaInAsBi QWs with 4.2% of bismuth inserted between GaAs barriers has reached 1.25 mu m. Moreover, the annealing at high temperatures of GaAsBi/AlAs QWs stimulated agglomeration of bismuth to quantum dots in the well layers, emitting at 1.5 mu m. The achieved wavelengths are the longest ones declared for the GaAsBi and GaInAsBi QW structures grown on the GaAs substrate, therefore bismide-based QWs are the promising structures for applications in infrared devices.
引用
收藏
页数:8
相关论文
共 50 条
  • [1] Generation, Absorption and Photoconductivity in 2D Structures of Perovskite with Nanodisc Quantum Dots
    Wolski, S.
    Dugaev, V. K.
    Inglot, M.
    Kwasnicki, P.
    ACTA PHYSICA POLONICA A, 2019, 135 (06) : 1287 - 1289
  • [2] Electrochemical transformation of 2D materials to their quantum dots
    Isaac, Bikash Ranjan
    Pillai, Vijayamohanan K.
    CHEMICAL PHYSICS REVIEWS, 2024, 5 (04):
  • [3] Dipolar Transformations of 2D Distributions of Quantum Dots
    Moctezuma, R. E.
    Carrillo, J. L.
    Meza-Montes, L.
    INTEGRATED FERROELECTRICS, 2011, 126 : 171 - 176
  • [4] Ground states of 2D and 3D quantum dots
    Hallam, LD
    Bruce, NA
    Maksym, PA
    SURFACE SCIENCE, 1996, 361 (1-3) : 648 - 651
  • [5] Charged excitons and trions in 2D parabolic quantum dots
    Quang, Nguyen Hong
    Huong, Nguyen Que
    Physica B: Condensed Matter, 2022, 633
  • [6] Charged excitons and trions in 2D parabolic quantum dots
    Nguyen Hong Quang
    Nguyen Que Huong
    PHYSICA B-CONDENSED MATTER, 2022, 633
  • [7] Electronic states of quantum dots: beyond the 2D parabolic model
    Maksym, PA
    Bruce, NA
    PHYSICA E, 1997, 1 (1-4): : 211 - 215
  • [8] Enhanced absorption with quantum dots, metal nanoparticles, and 2D materials
    Simsek, Ergun
    Mukherjee, Bablu
    QUANTUM DOTS AND NANOSTRUCTURES: GROWTH, CHARACTERIZATION, AND MODELING XIII, 2016, 9758
  • [9] Gate-Controlled Quantum Dots Based on 2D Materials
    Jing, Fang-Ming
    Zhang, Zhuo-Zhi
    Qin, Guo-Quan
    Luo, Gang
    Cao, Gang
    Li, Hai-Ou
    Song, Xiang-Xiang
    Guo, Guo-Ping
    ADVANCED QUANTUM TECHNOLOGIES, 2022, 5 (06)
  • [10] 2D spectroscopy of quantum dots in the short-wave infrared
    Park, Samuel
    Baranov, Dmitry
    Ryu, Jisu
    Jonas, David
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 250