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Theory of phonon-modified spontaneous emission and photoluminescence intensity from quantum dots coupled to structured photonic reservoirs

机译:量子点与结构化光子库耦合的声子修饰的自发发射和光致发光强度理论

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We present a general theory for calculating the spontaneous emission (SE) rate and the photoluminescence intensity of a quantum dot (QD) exciton coupled to an arbitrary structured photonic reservoir and a bath of acoustic phonons. We describe a polaron master equation (ME) approach which includes phonon interaction nonperturbatively and assume a weak coupling with the photon reservoir which is valid in the Purcell coupling regime. As examples of structured photonic reservoirs, we choose the cases of a Lorentzian cavity and a slow-light coupled-cavity waveguide. In analogy with a simple atom, the SE rate of a QD is expected to be proportional to the local density of photon states (LDOS) of the structured reservoir at the resonant frequency of a QD exciton. However, using a polaron ME theory, we show how the phonon-dressed SE rate of a QD is determined by a broad bandwidth of the photonic LDOS, in violation of the well known Fermi's golden rule. This broadband frequency dependence results in rich spontaneous emission enhancement and suppression, manifesting in significant changes in the Purcell factor and photoluminescence intensity as a function of frequency.
机译:我们提出了一种通用理论,用于计算自发发射(SE)速率和量子点(QD)激子耦合到任意结构化光子储层和声子池的光致发光强度。我们描述了一个极化子主方程(ME)方法,该方法包括非扰动的声子相互作用,并假设与珀森耦合系统中有效的光子储集层具有弱耦合。作为结构化光子储层的示例,我们选择洛伦兹腔和慢光耦合腔波导的情况。与简单原子类似,在QD激子共振频率下,QD的SE率与结构化储层的光子态局部密度(LDOS)成正比。但是,使用极化子ME理论,我们证明了量子点的声子修饰SE速率是如何由光子LDOS的宽带宽决定的,这违反了众所周知的费米黄金定律。这种宽带频率依赖性导致丰富的自发发射增强和抑制,表现为赛尔因数和光致发光强度随频率变化的显着变化。

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