论文标题
具有电子共振的X射线平面腔的经典,半古典和量子光学模型
Classical, semi-classical and quantum optical models for x-ray planar cavity with electronic resonance
论文作者
论文摘要
在这里,为具有内壳电子共振的X射线薄膜平面腔系统开发了半古典矩阵和量子绿色功能的两个理论模型。半古典模型基于矩阵形式主义,将每个层视为传播基质。关键的思想是在超薄膜近似下扩展共振原子层的传播基质,然后得出光谱观察的分析表达,即腔体反射。可以在现象学上解释空腔增强的衰减速率,腔诱导的能量转移和FANO干扰的典型腔作用。第二个量子模型采用分析绿色的功能来解决空腔系统。哈密顿系统和有效的能量水平被得出。有效的能级方案表明,腔效应作用于中间核心孔状态的调节。为了测试半古典矩阵和量子格林的功能模型的有效性,还召集了经典的帕拉特形式主义和原子折射率的分散校正。观察到了半古典模型和量子模型之间与帕拉特结果之间的反射率光谱的非常好的协议。当前的半古典矩阵和量子格林的功能模型将有助于预测新现象并优化未来实验的空腔结构,并使用现代X射线光谱技术促进量子光学效应的新兴。
Here two theoretical models of semi-classical matrix and quantum Green's function are developed for the system of x-ray thin-film planar cavity with inner-shell electronic resonances. The semi-classical model is based on the matrix formalism to treat each layer as the propagating matrix. The crucial idea is to expand the propagating matrix of the resonant atomic layer under ultrathin-film approximation, then derive the analytical expression of the spectral observation, i.e, the cavity reflectance. The typical cavity effects of cavity enhanced decay rate, cavity induced energy shift and the Fano interference which were observed in the recent experiments could be phenomenologically interpreted. The second quantum model employs the analytical Green's function to solve the cavity system. The system Hamiltonian and the effective energy-level are derived. The effective energy-level scheme indicates that the cavity effect acts on the regulation of the intermediated core-hole state. To test the validity of the semi-classical matrix and quantum Green's function models, the classical Parratt's formalism and the dispersion correction of the atomic refractive index are also recalled. Very good agreements in reflectivity spectra between semi-classical and quantum models with the Parratt's results are observed. The present semi-classical matrix and quantum Green's function models will be useful to predict the new phenomena and optimize the cavity structures for future experiments and promote the emerging of quantum optical effects with modern x-ray spectroscopy techniques.