论文标题

薄膜X射线腔QED的量子量子模型

Ab initio quantum models for thin-film x-ray cavity QED

论文作者

Lentrodt, Dominik, Heeg, Kilian P., Keitel, Christoph H., Evers, Jörg

论文摘要

我们开发了两种量子量子方法,用于具有光谱狭窄的X射线共振,例如Mössbauer核提供的薄膜X射线量子量子动力学。第一种方法是基于对腔的几个模式描述,并将现有现象学的几种模型促进和扩展到从头算理论。第二种方法使用分析知名的绿色功能来对系统进行建模。这两种方法不仅使一种方法可以从低兴奋性制度中得出代表腔和核的有效少数级方案,而且还为更高兴奋的研究提供了直接的研究,涉及非线性或量子现象。我们方法的从头算法进一步实现了对腔结构的直接优化,因此可以对核的光子环境进行直接优化,从而对特定应用定制有效的量子光学水平方案。为了说明从头算方法的力量,我们将已建立的量子光学建模扩展到任意厚度的谐振腔层,这对于实现最近实验中使用的腔体的定量一致至关重要。此外,我们考虑具有电磁诱导的透明度的多层腔,从头算出来,得出其量子光学的差不多系统,并确定先前使用现象学方法发现的建模中差异的起源,因为它是由循环层跨层的腔现场梯度引起的。

We develop two ab initio quantum approaches to thin-film x-ray cavity quantum electrodynamics with spectrally narrow x-ray resonances, such as those provided by Mössbauer nuclei. The first method is based on a few-mode description of the cavity, and promotes and extends existing phenomenological few-mode models to an ab initio theory. The second approach uses analytically-known Green's functions to model the system. The two approaches not only enable one to ab initio derive the effective few-level scheme representing the cavity and the nuclei in the low-excitation regime, but also provide a direct avenue for studies at higher excitation, involving non-linear or quantum phenomena. The ab initio character of our approaches further enables direct optimizations of the cavity structure and thus of the photonic environment of the nuclei, to tailor the effective quantum optical level scheme towards particular applications. To illustrate the power of the ab initio approaches, we extend the established quantum optical modeling to resonant cavity layers of arbitrary thickness, which is essential to achieve quantitative agreement for cavities used in recent experiments. Further, we consider multi-layer cavities featuring electromagnetically induced transparency, derive their quantum optical few-level systems ab initio, and identify the origin of discrepancies in the modeling found previously using phenomenological approaches as arising from cavity field gradients across the resonant layers.

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