论文标题

经典和量子周期系统中波浪限制的缩放理论

Scaling theory of wave confinement in classical and quantum periodic systems

论文作者

Kozoň, Marek, Lagendijk, Ad, Schlottbom, Matthias, van der Vegt, Jaap J. W., Vos, Willem L.

论文摘要

定期介质限制波的功能缺陷 - 声,电磁,电子,自旋等 - 取决于缺陷的结构。尽管缺陷通常是通过具有典型的能量水平的典型带结构表示的超晶格建模的,但是确定与给定带相关的限制是高度不平凡的,迄今为止尚无分析方法。因此,我们提出了一种严格的方法来对监禁的维度进行分类。从限制能量和模式体积开始,我们使用有限尺寸的缩放量表来发现这些数量与某些力量的比率产生了每个频段的限制维度。与频带结构计算相比,此分类具有可忽略的额外计算成本,并且对于量子和经典制度和任何维度的任何类型的波和任何类型的波浪都是有效的。在量子情况下,我们说明了具有氮空位的2D六边形BN中电子限制方法,这证实了先前的结果。在经典情况下,我们研究了三维光子带隙腔超级晶格,在那里我们确定了新型受体样行为。

Functional defects in periodic media confine waves - acoustic, electromagnetic, electronic, spin, etc. - in various dimensions, depending on the structure of the defect. While defects are usually modelled by a superlattice with a typical band-structure representation of energy levels, determining the confinement associated with a given band is highly non-trivial and no analytical method is known to date. Therefore, we propose a rigorous method to classify the dimensionality of the confinement. Starting from the confinement energy and the mode volume, we use finite-size scaling to find that ratios of these quantities to certain powers yield the confinement dimensionality of each band. This classification has negligible additional computational costs compared to a band structure calculation and is valid for any type of wave in both quantum and classical regimes, and any dimension. In the quantum case, we illustrate our method on electronic confinement in 2D hexagonal BN with a nitrogen vacancy, which confirms the previous results. In the classical case, we study a three-dimensional photonic band gap cavity superlattice, where we identify novel acceptor-like behavior.

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