Jin Seokmin, Lim Mikyung, Lee Seung S, Lee Bong Jae
Opt Express. 2016 Mar 21;24(6):A635-49. doi: 10.1364/OE.24.00A635.
Artificially designed hyperbolic metamaterial (HMM) possesses extraordinary electromagnetic features different from those of naturally existing materials. In particular, the dispersion relation of waves existing inside the HMM is hyperbolic rather than elliptical; thus, waves that are evanescent in isotropic media become propagating in the HMM. This characteristic of HMMs opens a novel way to spectrally control the near-field thermal radiation in which evanescent waves in the vacuum gap play a critical role. In this paper, we theoretically investigate the performance of a near-field thermophotovoltaic (TPV) energy conversion system in which a W/SiO-multilayer-based HMM serves as the emitter at 1000 K and InAs works as the TPV cell at 300 K. By carefully designing the thickness of constituent materials of the HMM emitter, the electric power of the near-field TPV devices can be increased by about 6 times at 100-nm vacuum gap as compared to the case of the plain W emitter. Alternatively, in regards to the electric power generation, HMM emitter at experimentally achievable 100-nm vacuum gap performs equivalently to the plain W emitter at 18-nm vacuum gap. We show that the enhancement mechanism of the HMM emitter is due to the coupled surface plasmon modes at multiple metal-dielectric interfaces inside the HMM emitter. With the minority carrier transport model, the optimal p-n junction depth of the TPV cell has also been determined at various vacuum gaps.
人工设计的双曲线超材料(HMM)具有与天然存在的材料不同的非凡电磁特性。特别是,HMM内部存在的波的色散关系是双曲线的,而不是椭圆的;因此,在各向同性介质中呈倏逝波的波在HMM中变为传播波。HMM的这一特性为光谱控制近场热辐射开辟了一条新途径,其中真空间隙中的倏逝波起着关键作用。在本文中,我们从理论上研究了一种近场热光伏(TPV)能量转换系统的性能,其中基于W/SiO多层结构的HMM在1000 K时用作发射器,InAs在300 K时用作TPV电池。通过精心设计HMM发射器组成材料的厚度,与普通W发射器相比,在100 nm真空间隙下,近场TPV器件的电功率可提高约6倍。或者,就发电而言,在实验可实现的100 nm真空间隙下的HMM发射器与在18 nm真空间隙下的普通W发射器性能相当。我们表明,HMM发射器的增强机制是由于HMM发射器内部多个金属-介质界面处的耦合表面等离子体模式。利用少数载流子输运模型,还确定了在各种真空间隙下TPV电池的最佳p-n结深度。