论文标题
在嘈杂的环境中,个体和多个量子发射器的调谐光谱特性
Tuning Spectral Properties of Individual and Multiple Quantum Emitters in Noisy Environments
论文作者
论文摘要
在动态环境中的量子发射极可能会与波动浴室及时无法控制地漂移。这可能会导致发射/吸收光谱,该光谱分布在广泛的频率上,并为各种应用带来了具有挑战性的障碍。我们在改变能量水平的环境中考虑了量子发射极,以便以给定的标准偏差和相关时间在给定平均值周围的高斯随机分布表示发射频率。我们研究该系统的发射光谱,当时它将其置于有限宽度$π$脉冲的周期序列的影响下。我们表明,该外部场协议可以通过将大部分发射光谱重新聚焦到脉冲载体频率上,有效地克服该系统中的光谱扩散。我们进一步考虑了在不同的噪声环境中的两个这样的发射器,发现两光子干扰操作可以通过在两个系统上应用的有限宽度脉冲的顺序使两光子干扰操作有效。最后,我们表明,名义上相似的发射器的合奏具有不同的环境,因此随机移动的发射频率可以具有其整体发射频谱,否则,根据随机分布,将其不均匀地宽扩大,并将其重新聚焦在线形上,并具有明确定义的中心峰,具有单个隔离的非noise nonnonoisy nonoisy的线路。这些结果证明了这种嘈杂环境的特定模型,这是由此处的外部控制协议保护光谱特性,该协议由有限宽度脉冲的周期序列表示。
A quantum emitter in a dynamic environment may have its energy levels drift uncontrollably in time with the fluctuating bath. This can result in an emission/absorption spectrum that is spread over a broad range of frequencies and presents a challenging hurdle for various applications. We consider a quantum emitter in an environment that alters the energy levels so that the emission frequency is represented by a Gaussian random distribution around a given mean value with given standard deviation and correlation time. We study the emission spectrum of this system when it is placed under the influence of a periodic sequence of finite width $π$ pulses. We show that this external field protocol can effectively overcome spectral diffusion in this system by refocusing the bulk of the emission spectrum onto the pulse carrier frequency. We further consider two such emitters in different noisy environments and find that the two-photon interference operation can be made efficient by the sequence of finite width pulses applied on both systems. Finally, we show that an ensemble of nominally similar emitters, each with its different environment, and thus randomly shifted emission frequency, can have its overall emission spectrum that would otherwise be inhomogeneously broadened according to the random distribution, refocused onto a lineshape with a well-defined central peak that has the linewidth of an individual isolated non-noisy emitter. These results demonstrate for this specific model of noisy environments, the protection of spectral properties by an external control protocol here represented by a periodic sequence of finite width pulses.