论文标题
Rydberg原子与基于石墨烯的范德华异质结构的Casimir-Polder相互作用
Casimir-Polder interactions of Rydberg atoms with graphene-based van der Waals heterostructures
论文作者
论文摘要
我们研究了\ textSuperscript {87} rb原子在单层和双层石墨烯附近的rydberg $ n $ s-states中的\ textsuperscript {87} rb原子的热casimir-polder(CP)。探索了CP电位对参数的依赖性,例如原子表面距离,温度,主量子数$ n $和石墨烯费米能量。通过大规模的数值模拟,我们表明,在不粘贴的制度中,CP电势由单调的非谐振和evanescent-波术语主导,并且在智障的制度中,CP电位表现出空间振荡。我们确定对CP潜力的共振部分的最重要贡献来自$ n $ s- $ n $ p和$ n $ s-$ s-$ s-$ s-$ s-$ p TRENITIONS。获得了CP电位作为主量子数和温度的函数的比例。还研究了一个夹杂在两个石墨烯层之间的六角形硼层的异质结构。当硝酸硼层足够薄时,可以通过更改顶部石墨烯层的费米能来削弱CP电位。我们的研究提供了理解和控制Rydberg Atoms在单一和多层石墨烯基于范德华异质结构附近经历的CP电位的见解。
We investigate the thermal Casimir-Polder (CP) potential of \textsuperscript{87}Rb atoms in Rydberg $n$S-states near single- and double-layer graphene. The dependence of the CP potential on parameters such as atom-surface distance, temperature, principal quantum number $n$ and graphene Fermi energy are explored. Through large scale numerical simulations, we show that, in the non-retarded regime, the CP potential is dominated by the non-resonant and evanescent-wave terms which are monotonic, and that, in the retarded regime, the CP potential exhibits spatial oscillations. We identify that the most important contributions to the resonant component of the CP potential come from the $n$S-$n$P and $n$S-$(n-1)$P transitions. Scaling of the CP potential as a function of the principal quantum number and temperature is obtained. A heterostructure comprising hexagonal boron nitride layers sandwiched between two graphene layers is also studied. When the boron nitride layer is sufficiently thin, the CP potential can be weakened by changing the Fermi energy of the top graphene layer. Our study provides insights for understanding and controlling CP potentials experienced by Rydberg atoms near single and multi-layer graphene-based van der Waals heterostructures.