论文标题
用于连贯的完美吸收的石墨烯多层:层间分离的影响
Graphene multilayers for coherent perfect absorption: effects of interlayer separation
论文作者
论文摘要
我们提出了一项模型研究,以估计多层石墨烯结构对亚纳光间间间隔的光学吸收的敏感性。从转移矩阵形式主义开始,我们为远场观测值提供了半分析表达式。忽略层间分离,导致上限至实现板电导率的50%的吸收,正是相干完美吸收(CPA)所需的值,而对于复杂价值的导电率,我们确定始终较低的上限。对于原始石墨烯,发现达到此最大值所需的层数是通过良好结构常数固定的。对于有限的层间分离,我们发现吸收的上限仅存在,直到层间分离的特定限制值比石墨烯多层中的逼真的层间分离小。除了这个值之外,我们发现吸收与层间分离有很强的依赖性。对于无限数量的石墨烯层,基于持续分数分析,得出了吸收的封闭形式的分析表达。我们与实验的比较表明,适用于CPA的多层范德华晶体可以更准确地建模为电子独立的层,如果仔细考虑了其子纳光度间的层间隔,则可以获得其光学性能的更可靠的光学性能。
We present a model study to estimate the sensitivity of the optical absorption of multilayered graphene structure to the subnanometer interlayer separation. Starting from a transfer-matrix formalism we derive semi-analytical expressions for the far-field observables. Neglecting the interlayer separation, results in upper bounds to the absorption of 50% for real-valued sheet conductivities, exactly the value needed for coherent perfect absorption (CPA), while for complex-valued conductivities we identify upper bounds that are always lower. For pristine graphene the number of layers required to attain this maximum is found to be fixed by the fine structure constant. For finite interlayer separations we find that this upper bound of absorption only exists until a particular limiting value of interlayer separation which is less than the realistic interlayer separation in graphene multilayers. Beyond this value, we find a strong dependence of absorption with the interlayer separation. For an infinite number of graphene layers a closed-form analytical expression for the absorption is derived, based on a continued-fraction analysis. Our comparison with experiments illustrates that multilayer Van der Waals crystals suitable for CPA can be more accurately modelled as electronically independent layers and more reliable predictions of their optical properties can be obtained if their subnanometer interlayer separations are carefully accounted for.