Decoherence reduces thermal energy loss in graphene quantum dots

被引:14
|
作者
Jaeger, H. M. [1 ]
Green, J. R. [1 ]
Prezhdo, O. V. [1 ]
机构
[1] Univ Rochester, Dept Chem, Rochester, NY 14627 USA
基金
美国国家科学基金会;
关键词
MOLECULAR-DYNAMICS SIMULATIONS; AUGMENTED-WAVE METHOD; SEMICONDUCTOR NANOCRYSTALS; RAMAN-SPECTROSCOPY; CARBON NANOTUBES; SOLAR-CELLS; ELECTRON RELAXATION; BASIS-SET; NANORIBBONS; EFFICIENCY;
D O I
10.1063/1.4817269
中图分类号
O59 [应用物理学];
学科分类号
摘要
Intraband splitting energies in graphene quantum dots are on the order of the fundamental phonon energies, creating a single-phonon relaxation pathway. Yet, charge carrier thermalization is slow. Our time-domain, ab initio computations demonstrate that the slow rate of electronic relaxation is due to quantum decoherence. The relaxation through the discrete states occurs on a 30 ps timescale. Electron-hole recombination takes place within 660 ps, two orders of magnitude slower than a coherent mechanism. Disorder introduced by structural variations around the edge expedites coherence loss, increasing the lifetimes of excited charge carriers in graphene quantum dots. (C) 2013 AIP Publishing LLC.
引用
收藏
页数:4
相关论文
共 50 条
  • [31] Semiconducting Quantum Dots for Energy Conversion and Storage
    Yu, Yutang
    Ma, Tianyi
    Huang, Hongwei
    ADVANCED FUNCTIONAL MATERIALS, 2023, 33 (16)
  • [32] Nitrogen-doped graphene and graphene quantum dots: A review onsynthesis and applications in energy, sensors and environment
    Kaur, Manpreet
    Kaur, Manmeet
    Sharma, Virender K.
    ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2018, 259 : 44 - 64
  • [33] Advances in Preparation of Graphene Quantum Dots
    Wang Jiaojiao
    Feng Miao
    Zhan Hongbing
    PROGRESS IN CHEMISTRY, 2013, 25 (01) : 86 - 94
  • [34] Colloidal Graphene Quantum Dots with Well-Defined Structures
    Yan, Xin
    Li, Binsong
    Li, Liang-Shi
    ACCOUNTS OF CHEMICAL RESEARCH, 2013, 46 (10) : 2254 - 2262
  • [35] In situ manipulation of fluorescence resonance energy transfer between quantum dots and monolayer graphene oxide by laser irradiation
    He, Wenjun
    Qin, Chengbing
    Qiao, Zhixing
    Gong, Yani
    Zhang, Xiaorong
    Zhang, Guofeng
    Chen, Ruiyun
    Gao, Yan
    Xiao, Liantuan
    Jia, Suotang
    NANOSCALE, 2019, 11 (03) : 1236 - 1244
  • [36] Hydrothermal route to graphene quantum dots: Effects of precursor and temperature
    Xie, Jian-De
    Lai, Gui-Wen
    Huq, Mohammad Mahmudul
    DIAMOND AND RELATED MATERIALS, 2017, 79 : 112 - 118
  • [37] Fluorescence Resonance Energy Transfer between Quantum Dots and Graphene Oxide for Sensing Biomolecules
    Dong, Haifeng
    Gao, Wenchao
    Yan, Feng
    Ji, Hanxu
    Ju, Huangxian
    ANALYTICAL CHEMISTRY, 2010, 82 (13) : 5511 - 5517
  • [38] Determination of graphene's edge energy using hexagonal graphene quantum dots and PM7 method
    Vorontsov, Alexander V.
    Tretyakov, Evgeny V.
    PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2018, 20 (21) : 14740 - 14752
  • [39] Energy structure of CdSe/CdTe type II colloidal quantum dots Do phonon bottlenecks remain for thick shells?
    Smith, Charles T.
    Tyrrell, Edward J.
    Leontiadou, Marina A.
    Miloszewski, Jacek
    Walsh, Thomas
    Cadirci, Musa
    Page, Robert
    O'Brien, Paul
    Binks, David
    Tomic, Stanko
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2016, 158 : 160 - 167
  • [40] Characteristics of graphene quantum dots determined by edge structures: three kinds of dots fabricated using thermal plasma jet
    Lee, Myung Woo
    Kim, Juhan
    Suh, Jung Sang
    RSC ADVANCES, 2015, 5 (83): : 67669 - 67675