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半导体量子点中的光激发电子和空穴动力学:声子诱导的弛豫、退相、多激子产生和复合。

Photoexcited electron and hole dynamics in semiconductor quantum dots: phonon-induced relaxation, dephasing, multiple exciton generation and recombination.

机构信息

Department of Chemistry, Kyoto University, Kyoto, 606-8502, Japan.

出版信息

J Phys Condens Matter. 2012 Sep 12;24(36):363201. doi: 10.1088/0953-8984/24/36/363201. Epub 2012 Aug 21.

Abstract

Photoexcited dynamics of electrons and holes in semiconductor quantum dots (QD), including phonon-induced relaxation, multiple exciton generation, fission and recombination (MEG, MEF and MER), were simulated by combining ab initio time-dependent density functional theory and non-adiabatic molecular dynamics. These nonequilibrium phenomena govern the optical properties and photoexcited dynamics of QDs, determining the branching between electronic processes and thermal energy losses. Our approach accounts for QD size and shape as well as defects, core-shell distribution, surface ligands and charge trapping, which significantly influence the properties of photoexcited QDs. The method creates an explicit time-domain representation of photoinduced processes and describes various kinetic regimes owing to the non-perturbative treatment of quantum dynamics. QDs of different sizes and materials, with and without ligands, are considered. The simulations provide direct evidence that the high-frequency ligand modes on the QD surface play a pivotal role in the electron-phonon relaxation, MEG, MEF and MER. The insights reported here suggest novel routes for controlling the photoinduced processes in semiconductor QDs and lead to new design principles for increasing the efficiencies of photovoltaic devices.

摘要

通过将从头算时间相关密度泛函理论和非绝热分子动力学相结合,模拟了半导体量子点(QD)中电子和空穴的光激发动力学,包括声子诱导弛豫、多激子产生、裂变和复合(MEG、MEF 和 MER)。这些非平衡现象控制着 QD 的光学性质和光激发动力学,决定了电子过程和热能损失之间的分支。我们的方法考虑了 QD 的大小和形状以及缺陷、核壳分布、表面配体和电荷俘获,这些因素显著影响了光激发 QD 的性质。该方法创建了光诱导过程的显式时域表示,并由于对量子动力学的非微扰处理,描述了各种动力学状态。考虑了具有和不具有配体的不同尺寸和材料的 QD。模拟提供了直接证据,表明 QD 表面上的高频配体模式在电子-声子弛豫、MEG、MEF 和 MER 中起着关键作用。这里报道的见解为控制半导体 QD 中的光致过程提供了新的途径,并为提高光伏器件效率带来了新的设计原则。

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