论文标题
使用波动电动力学对相互和非偏置材料的热发射的极化分析
Polarimetric analysis of thermal emission from both reciprocal and nonreciprocal materials using fluctuational electrodynamics
论文作者
论文摘要
在具有微/纳米结构的许多超材料中,已经观察到给定极化的相干热发射。对热发射的完整描述需要对所有极化状态的光谱角发射率进行全面表征。通常,根据基希霍夫定律的吸收和发射率之间的等效性获得了发射率。但是,这种关系可能是非重新介质的无效。在处理磁光材料和磁性Weyl半学时,需要使用无光相互限制的更通用的方法。在这里,基于波动电动力学进行热发射的极化分析。使用具有各向异性培养基的多层系统(包括非重生材料)的多层系统,使用相干矩阵获得了Stokes参数。结果表明,热发射可以在不同的方向和频率上循环或线性极化。这些发现与近年来几个小组所提供的修改后的基尔霍夫定律的陈述是一致的,因此证明了直接和间接方法的适当性是合理的。这项研究将有助于设计所需的热发射器,以进行能量收集和热控制。
Coherent thermal emission for a given polarization has been observed in many metamaterials with micro/nanostructures. A complete description of the thermal emission requires the full characterization of the spectral angular emissivity for all polarization states. Emissivity is typically obtained based on the equivalence between the absorptivity and emissivity according to Kirchhoff's law; however, such relation may be invalid for nonreciprocal media. More general approaches without the constrain of optical reciprocity are necessary when dealing with magneto-optical materials and magnetic Weyl semimetals. Here, a polarimetric analysis of thermal emission is carried out based on fluctuational electrodynamics. The Stokes parameters are obtained using coherency matrix for a multilayered system with anisotropic media, including nonreciprocal materials. The results demonstrate that thermal emission may be circularly or linearly polarized in different directions and frequencies. The findings are consistent with the statements of the modified Kirchhoff's law provided by several groups in recent years, and therefore, justify the appropriateness of both the direct and indirect methods. This study will help the design of desired thermal emitters for energy harvesting and thermal control.