论文标题
三体平面系统中近场辐射传热的磁场控制
Magnetic field control of the near-field radiative heat transfer in three-body planar systems
论文作者
论文摘要
最近,将外部磁场应用于积极控制近场传热的应用已成为一种吸引人和有前途的技术。现有的研究表明,外部静态磁场倾向于减少两个含有磁光(MO)材料的平面结构之间交换的辐射通量,但尚未报告在不同温度下具有更多此类结构的近场热磁效应。在这里,我们专注于研究外部磁场的存在如何在多体构型中修饰辐射能传递,该构型由三个mo n掺杂的半导体板组成,并由亚波长真空间隙隔开。为了准确计算在这种各向异性平面系统中传递的辐射通量,提供了一种基于绿色功能的一般方法,该方法允许人们研究具有平面几何形状的任意许多体系中的辐射热传递。我们证明,在几何和热参数的特定选择下,施加的磁场能够减少或增强三元素的MO平面系统中的近场能量转移,这取决于零局部表面波的阻尼逃生场之间的相互作用,并通过磁场引起的磁场引起的传播高压模式。我们的研究扩大了有关使用外场来积极控制亚波长度方案的热传递的理解,并且可以利用纳米级热管理领域的潜在应用来利用。
Recently, the application of an external magnetic field to actively control the near-field heat transfer has emerged as an appealing and promising technique. Existing studies have shown that an external static magnetic field tends to reduce the subwavelength radiative flux exchanged between two planar structures containing magneto-optical (MO) materials, but so far the nearfield thermomagnetic effects in systems with more such structures at different temperatures have not been reported. Here, we are focused on examining how the presence of an external magnetic field modifies the radiative energy transfer in a many-body configuration consisting of three MO n-doped semiconductors slabs, separated by subwavelength vacuum gaps. To exactly calculate the radiative flux transferred in such an anisotropic planar system, a general Green-function-based approach is offered, which allows one to investigate the radiative heat transfer in arbitrary manybody systems with planar geometry. We demonstrate that, under specific choices of the geometrical and thermal parameters, the applied magnetic field is able to either reduce or enhance the near-field energy transfer in three-element MO planar systems, depending on the interplay between the damped evanescent fields of the zero-field surface waves and the propagating hyperbolic modes induced by magnetic fields. Our study broadens the understanding concerning to the use of external fields to actively control the heat transfer in subwavelength regimes, and may be leveraged for potential applications in the realm of nanoscale thermal management.