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Polarization Engineering of Thermal Radiation Using Metallic Photonic Crystals

机译:金属光子晶体的热辐射偏振工程

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摘要

Thermal radiation (TR) from a hot object was one of the clues that led to the development of quantum physics a century ago. Recently it has attracted renewed scientific interest as extraordinary phenomena have been demonstrated for objects patterned periodically on the micrometer scale, for example, coherent TR and spectrally enhanced TR. While TR has been known to be polarized by fundamental optical phenomena, such as refraction and diffraction, engineering the polarization of TR has been attempted by few. Polarization-engineered thermal emitters have the potential to enable higher conversion efficiency in thermophotovoltaics. Here we report that a series of polarized thermal emitters (PTEs) can be selectively enhanced with a high degree of polarization (DOP) up to 0.5 through the use of metallic photonic crystals (MPCs). We show that strong absorption induced by greatly reduced group velocity for a certain polarization is the underlying physical basis for this phenomenon. As the PTEs have two TR channels with different linear polarizations, advanced applications such as tunable multichannel infrared (IR) emitters and encrypted infrared markers are also possible.
机译:来自高温物体的热辐射(TR)是导致一个世纪前量子物理学发展的线索之一。近来,它已经引起了新的科学兴趣,因为已经证明了在微米级上周期性图案化的物体的非凡现象,例如相干TR和光谱增强的TR。尽管已知TR被基本的光学现象(例如折射和衍射)偏振,但很少有人尝试设计TR的偏振。极化设计的热辐射器有潜力在热光电领域实现更高的转换效率。在这里我们报告说,通过使用金属光子晶体(MPC),可以以高达0.5的高度偏振(DOP)选择性地增强一系列偏振热发射器(PTE)。我们表明,由某一特定极化的群速度大大降低引起的强吸收是该现象的潜在物理基础。由于PTE具有两个具有不同线性极化的TR通道,因此诸如可调谐多通道红外(IR)发射器和加密红外标记之类的高级应用也是可能的。

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