The quantum confinement effect on the spectrum of near-field thermal radiation by quantum dots

被引:2
|
作者
Zare, Saman [1 ,2 ]
Edalatpour, Sheila [1 ,2 ]
机构
[1] Univ Maine, Dept Mech Engn, Orono, ME 04469 USA
[2] Univ Maine, Frontier Inst Res Sensor Technol, Orono, ME 04469 USA
基金
美国国家科学基金会;
关键词
THERMOPHOTOVOLTAIC ENERGY-CONVERSION; HEAT-TRANSFER; OPTICAL-PROPERTIES; PERFORMANCE ANALYSIS; MAGNETIC POLARITON; FAR-FIELD; RECTIFICATION; SILICON; SEMICONDUCTOR; ABSORPTION;
D O I
10.1063/5.0049729
中图分类号
O59 [应用物理学];
学科分类号
摘要
The quantum confinement effect on the spectrum of near-field thermal radiation by periodic and random arrays of quantum dots (QDs) is investigated. The local density of states (LDOS) thermally emitted by QD arrays made of three lead chalcogenides, namely, lead sulfide, lead selenide, and lead telluride, is computed at a near-field distance from the arrays. The dielectric function of the QDs is extracted from their absorption spectra by utilizing an optimization technique. The thermal discrete dipole approximation is used for computing the LDOS. It is shown that the peak wavenumber of near-field LDOS emitted by periodic arrays of lead chalcogenide QDs can be significantly modulated (up to 4490 cm(-1)) by varying the size of the dots. The LDOS is proportional to the imaginary part of the QDs' polarizability, which peaks at the bandgap energy of the QDs. The bandgap energy of the QDs (and thus the LDOS peak) is significantly affected by the quantum confinement effect, which is size dependent. While the magnitude of thermal radiation by random arrays of QDs can be different from the periodic arrays with the same filling factor by up to +/- 26%, the LDOS spectrum and peak location are the same for both periodic and random arrays. The peak wavenumber of near-field radiative heat transfer between the QD arrays is also strongly affected by quantum confinement in the QDs, and thus, it can be tuned by changing the size of the QDs.
引用
收藏
页数:9
相关论文
共 50 条
  • [31] Spectroscopy and imaging of InGaAs quantum dots using near-field optical probing
    Chavez-Pirson, A.
    Ando, H.
    Temmyo, J.
    IQEC, International Quantum Electronics Conference Proceedings, 1999,
  • [32] Anti-parallel coupling of Quantum Dots with an Optical Near-Field Interaction
    Kawazoe, Tadashi
    Kobayashi, Kiyoshi
    Ohtsu, Motoichi
    E-JOURNAL OF SURFACE SCIENCE AND NANOTECHNOLOGY, 2005, 3 : 74 - 78
  • [33] Low temperature near-field photoluminescence spectroscopy of InGaAs single quantum dots
    Saiki, T
    Nishi, K
    Ohtsu, M
    JAPANESE JOURNAL OF APPLIED PHYSICS PART 1-REGULAR PAPERS SHORT NOTES & REVIEW PAPERS, 1998, 37 (3B): : 1638 - 1642
  • [34] Demonstration of nanophotonic NOT gate using near-field optically coupled quantum dots
    T. Kawazoe
    K. Kobayashi
    K. Akahane
    M. Naruse
    N. Yamamoto
    M. Ohtsu
    Applied Physics B, 2006, 84 : 243 - 246
  • [35] Nanophotonic computing based on optical near-field interactions between quantum dots
    Naruse, M
    Miyazaki, T
    Kawazoe, T
    Sangu, S
    Kobayashi, K
    Kubota, F
    Ohtsu, M
    IEICE TRANSACTIONS ON ELECTRONICS, 2005, E88C (09) : 1817 - 1823
  • [36] NEAR-FIELD IMAGING SPECTROSCOPY OF LOW DENSITY InAs/InP QUANTUM DOTS
    Kubota, R.
    Mizuno, D.
    Saiki, T.
    Dupuy, E.
    Regreny, P.
    Gendry, M.
    2009 IEEE 21ST INTERNATIONAL CONFERENCE ON INDIUM PHOSPHIDE & RELATED MATERIALS (IPRM), 2009, : 87 - +
  • [37] Near-field optical spectroscopy of localized excitons in strained CdSe quantum dots
    Flack, F
    Samarth, N
    Nikitin, V
    Crowell, PA
    Shi, J
    Levy, J
    Awschalom, DD
    PHYSICAL REVIEW B, 1996, 54 (24): : 17312 - 17315
  • [38] Near-field optical spectroscopy and imaging of single InGaAs/AlGaAs quantum dots
    Chavez-Pirson, A
    Temmyo, J
    Kamada, H
    Gotoh, H
    Ando, H
    APPLIED PHYSICS LETTERS, 1998, 72 (26) : 3494 - 3496
  • [39] Mechanical interaction in near-field spectroscopy of single semiconductor quantum dots.
    Mintairov, AM
    Blagnov, PA
    Kovalenkov, OV
    Li, C
    Merz, JL
    Oktyabrsky, S
    Tokranov, V
    Vlasov, AS
    Vinokurov, DA
    MATERIALS AND DEVICES FOR OPTOELECTRONICS AND MICROPHOTONICS, 2002, 722 : 319 - 324
  • [40] Demonstration of nanophotonic NOT gate using near-field optically coupled quantum dots
    Kawazoe, T.
    Kobayashi, K.
    Akahane, K.
    Naruse, M.
    Yamamoto, N.
    Ohtsu, M.
    APPLIED PHYSICS B-LASERS AND OPTICS, 2006, 84 (1-2): : 243 - 246