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All-optical control of exciton flow in a colloidal quantum well complex

         

摘要

Excitonics,an alternative to romising for processing information since semiconductor electronics is rapidly approaching the end of Moore’s law.Currently,the development of excitonic devices,where exciton flow is controlled,is mainly focused on electric-field modulation or exciton polaritons in high-Q cavities.Here,we show an alloptical strategy to manipulate the exciton flow in a binary colloidal quantum well complex through mediation of the Förster resonance energy transfer(FRET)by stimulated emission.In the spontaneous emission regime,FRET naturally occurs between a donor and an acceptor.In contrast,upon stronger excitation,the ultrafast consumption of excitons by stimulated emission effectively engineers the excitonic flow from the donors to the acceptors.Specifically,the acceptors’stimulated emission significantly accelerates the exciton flow,while the donors’stimulated emission almost stops this process.On this basis,a FRET-coupled rate equation model is derived to understand the controllable exciton flow using the density of the excited donors and the unexcited acceptors.The results will provide an effective alloptical route for realizing excitonic devices under room temperature operation.

著录项

  • 来源
    《光:科学与应用(英文版)》 |2020年第1期|1749-1756|共8页
  • 作者单位

    LUMINOUS;

    Centre of Excellence for Semiconductor Lighting and Displays;

    School of Electrical and Electronic Engineering;

    The Photonics Institute(TPI);

    Nanyang Technological University;

    50 Nanyang Avenue;

    639798 Singapore;

    Singapore;

    Department of Electrical and Electronics Engineering and Department of Physics;

    UNAM-Institute of Materials Science and Nanotechnology;

    Bilkent University;

    Bilkent;

    06800 Ankara;

    Turkey;

    School of Physical and Mathematical Sciences;

    Division of Physics and Applied Physics;

    Nanyang Technological University;

    639798 Singapore;

    Singapore;

    CINTRA UMI CNRS/NTU/THALES 3288;

    Research Techno Plaza;

    50 Nanyang Drive;

    Border X Block;

    Level 6;

    637553 Singapore;

    Singapore;

  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 半导体物理学;
  • 关键词

    process; flow; quantum;

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