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首页> 外文期刊>Physical review. B, Condensed Matter And Materials Physics >Population dynamics and dephasing of excitons and electron-hole pairs in poly type wurtzite/zinc-blende InP nanowires
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Population dynamics and dephasing of excitons and electron-hole pairs in poly type wurtzite/zinc-blende InP nanowires

机译:多纤锌矿/闪锌矿InP纳米线中激子和电子-空穴对的种群动力学和相移

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摘要

We investigated the dephasing and population dynamics of electron-hole (e-h) pairs and excitons in vapor-liquid-solid grown polytype wurtzite/zinc-blende (WZ/ZB) InP nanowires (NWs) using heterodyne four-wave mixing (HFWM) in three-beam configuration at temperatures from 80 to 270 K. The photon energy of the 100 fs excitation pulses was varied to predominantly excite either mobile excitons and e-h pairs or indirect WZ/ZB excitons. The population dynamics reveal a multiexponential decay with time constants ranging over six orders of magnitude. The dynamics has been interpreted by a coupled rate equation model which considers WZ and ZB electron states, donor electron states, and band bending trapping holes to the surface. The model reproduces the essential features of the experimentally observed dynamics at different excitation energies, fluences, and lattice temperatures. Intraband thermalization is reached within 5-50 ps, after which the nonradiative recombination dominates the dynamics. Notably, the screenable surface band bending results in long-lived spatially separated carriers, causing a photogenerated, spatially separated electron and hole density which is dominating the long-lived dynamics.
机译:我们研究了使用外差四波混频(HFWM)的气-液-固生长的纤锌矿/闪锌矿(WZ / ZB)InP纳米线(NWs)中电子-空穴(eh)对和激子的相移和种群动态在80到270 K的温度下具有三束配置。改变100 fs激发脉冲的光子能量以主要激发移动激子和eh对或间接WZ / ZB激子。种群动态揭示了一个多指数衰减,其时间常数超过六个数量级。通过耦合速率方程模型对动力学进行了解释,该模型考虑了WZ和ZB电子态,施主电子态以及带弯曲到表面的陷阱。该模型再现了在不同激发能,注量和晶格温度下实验观察到的动力学的基本特征。带内热化在5-50 ps内达到,此后非辐射重组主导了动力学。明显地,可筛选的表面带弯曲导致长寿命的空间分离的载流子,导致光生的,空间上分离的电子和空穴密度,其支配了长寿命的动力学。

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  • 来源
    《Physical review. B, Condensed Matter And Materials Physics》 |2017年第4期|045305.1-045305.17|共17页
  • 作者单位

    Department of Physics, University of Cincinnati, Cincinnati, Ohio 45221, USA;

    Department of Physics and Astronomy, James Madison University, Harrisonburg, Virginia 22807, USA;

    Department of Electronic Materials Engineering, Research School of Physics and Engineering, Australian National University,Canberra ACT 2601, Australia;

    Department of Electronic Materials Engineering, Research School of Physics and Engineering, Australian National University,Canberra ACT 2601, Australia;

    Department of Electronic Materials Engineering, Research School of Physics and Engineering, Australian National University,Canberra ACT 2601, Australia;

    School of Physics and Astronomy, Cardiff University, Cardiff CF24 3AA, United Kingdom;

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