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光学激发量子点产生的声子的超快原子尺度可视化

Ultrafast atomic-scale visualization of acoustic phonons generated by optically excited quantum dots.

作者信息

Vanacore Giovanni M, Hu Jianbo, Liang Wenxi, Bietti Sergio, Sanguinetti Stefano, Carbone Fabrizio, Zewail Ahmed H

机构信息

L-NESS and Dipartimento di Scienza dei Materiali, Università di Milano Bicocca, Via Cozzi 53, I-20125 Milano, Italy.

Institute of Physics, Laboratory for Ultrafast Microscopy and Electron Scattering (LUMES), École Polytechnique Fédérale de Lausanne (EPFL), Lausanne, Switzerland.

出版信息

Struct Dyn. 2017 Aug 7;4(4):044034. doi: 10.1063/1.4998009. eCollection 2017 Jul.

Abstract

Understanding the dynamics of atomic vibrations confined in quasi-zero dimensional systems is crucial from both a fundamental point-of-view and a technological perspective. Using ultrafast electron diffraction, we monitored the lattice dynamics of GaAs quantum dots-grown by Droplet Epitaxy on AlGaAs-with sub-picosecond and sub-picometer resolutions. An ultrafast laser pulse nearly resonantly excites a confined exciton, which efficiently couples to high-energy acoustic phonons through the deformation potential mechanism. The transient behavior of the measured diffraction pattern reveals the nonequilibrium phonon dynamics both within the dots and in the region surrounding them. The experimental results are interpreted within the theoretical framework of a non-Markovian decoherence, according to which the optical excitation creates a localized polaron within the dot and a travelling phonon wavepacket that leaves the dot at the speed of sound. These findings indicate that integration of a phononic emitter in opto-electronic devices based on quantum dots for controlled communication processes can be fundamentally feasible.

摘要

从基础观点和技术角度来看,了解限制在准零维系统中的原子振动动力学都至关重要。利用超快电子衍射,我们以亚皮秒和亚皮米分辨率监测了通过液滴外延生长在AlGaAs上的GaAs量子点的晶格动力学。超快激光脉冲几乎共振激发一个受限激子,该激子通过形变势机制有效地与高能声子耦合。测量的衍射图案的瞬态行为揭示了量子点内部及其周围区域的非平衡声子动力学。实验结果在非马尔可夫退相干的理论框架内得到解释,根据该理论,光激发在量子点内产生一个局域极化子,并产生一个以声速离开量子点的传播声子波包。这些发现表明,在基于量子点的光电器件中集成一个声子发射器以实现可控通信过程在根本上是可行的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c8c8/5552391/2a903c60501b/SDTYAE-000004-044034_1-g001.jpg

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