Strong coupling dynamics of driven quantum systems with permanent dipoles

IF 4.2 Q2 QUANTUM SCIENCE & TECHNOLOGY
Adam Burgess, Marian Florescu, Dominic M. Rouse
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引用次数: 0

Abstract

Many optically active systems possess spatially asymmetric electron orbitals. These generate permanent dipole moments, which can be stronger than the corresponding transition dipole moments, significantly affecting the system dynamics and creating polarized Fock states of light. We derive a master equation for these systems with an externally applied driving field by employing an optical polaron transformation that captures the photon mode polarization induced by the permanent dipoles. This provides an intuitive framework to explore their influence on the system dynamics and emission spectrum. We find that permanent dipoles introduce multiple-photon processes and a photon sideband, which causes substantial modifications to single-photon transition dipole processes. In the presence of an external drive, permanent dipoles lead to an additional process that we show can be exploited to control the decoherence and transition rates. We derive the emission spectrum of the system, highlighting experimentally detectable signatures of optical polarons, and measurements that can identify the parameters in the system Hamiltonian, the magnitude of the differences in the permanent dipoles, and the steady-state populations of the system.
永久偶极子驱动量子系统的强耦合动力学
许多光学活性体系具有空间不对称的电子轨道。这些产生的永久偶极矩可能比相应的跃迁偶极矩更强,从而显著影响系统动力学并产生光的偏振Fock态。我们通过利用光学极化子变换来捕捉由永久偶极子引起的光子模式偏振,推导出具有外源驱动场的这些系统的主方程。这为探索它们对系统动力学和发射光谱的影响提供了一个直观的框架。我们发现永久偶极子引入了多光子过程和光子边带,这对单光子跃迁偶极子过程造成了实质性的改变。在外部驱动存在的情况下,永久偶极子导致了一个额外的过程,我们表明可以利用该过程来控制退相干和跃迁速率。我们推导了系统的发射光谱,突出了光学极化子的实验可检测特征,以及可以识别系统哈密顿量参数的测量,永久偶极子差异的大小,以及系统的稳态种群。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.90
自引率
0.00%
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