论文标题
热平衡自旋扭矩:磁光介质中的近场辐射角动量转移
Thermal equilibrium spin torque: Near-field radiative angular momentum transfer in magneto-optical media
论文作者
论文摘要
光的旋转和轨道角动量在量子纳米光子学以及拓扑电动力学中起着核心作用。在这里,我们表明,即使在全球热平衡中,包括非铅磁光材料组成的有限大小物体的热辐射也可以发挥自旋扭矩。我们通过将Rytov的波动电动力学与光学角动量理论相结合,超越了近场传热的范式,计算了有限大小的非重点对象之间的近场辐射角动量转移。我们证明,在施加的磁场(t对称性破裂)的情况下,其周围环境的单个磁光立方粒子具有扭矩。此外,即使在整体热平衡中,两个具有未对准的旋转轴的颗粒经历了相同的尺寸扭矩,其符号相反,它们倾向于将它们的旋转轴对准相互平行。我们的结果普遍适用于在红外频率下表现出异常的霍尔效应(Gyrotropy)等半导体(磁性磁性)等半导体。我们的工作为纳米级设备的热波动介导的近场动量转移铺平了道路。
Spin and orbital angular momentum of light plays a central role in quantum nanophotonics as well as topological electrodynamics. Here, we show that the thermal radiation from finite-sized bodies comprising of nonreciprocal magneto-optical materials can exert a spin torque even in global thermal equilibrium. Moving beyond the paradigm of near-field heat transfer, we calculate near-field radiative angular momentum transfer between finite-sized nonreciprocal objects by combining Rytov's fluctuational electrodynamics with the theory of optical angular momentum. We prove that a single magneto-optical cubic particle in non-equilibrium with its surroundings experiences a torque in the presence of an applied magnetic field (T-symmetry breaking). Furthermore, even in global thermal equilibrium, two particles with misaligned gyrotropic axes experience equal magnitude torques with opposite signs which tend to align their gyrotropic axes parallel to each other. Our results are universally applicable to semiconductors like InSb (magneto-plasmas) as well as Weyl semi-metals which exhibit the anomalous Hall effect (gyrotropy) at infrared frequencies. Our work paves the way towards near-field angular momentum transfer mediated by thermal fluctuations for nanoscale devices.