Fan Ziwei, Hwang Taeseung, Lin Sam, Chen Yixin, Wong Zi Jing
Department of Aerospace Engineering, Texas A&M University, College Station, USA.
School of Electronic Science and Technology, Eastern Institute of Technology, Ningbo, China.
Nat Commun. 2024 May 28;15(1):4544. doi: 10.1038/s41467-024-48826-9.
Thermal radiation is intrinsically broadband, incoherent and non-directional. The ability to beam thermal energy preferentially in one direction is not only of fundamental importance, but it will enable high radiative efficiency critical for many thermal sensing, imaging, and energy devices. Over the years, different photonic materials and structures have been designed utilizing resonant and propagating modes to generate directional thermal emission. However, such thermal emission is narrowband and polarised, leading to limited thermal transfer efficiency. Here we experimentally demonstrate ultrabroadband polarisation-independent directional control of thermal radiation with a pixelated directional micro-emitter. Our compact pixelated directional micro-emitter facilitates tunable angular control of thermal radiation through non-imaging optical principles, producing a large emissivity contrast at different view angles. Using this platform, we further create a pixelated infrared display, where information is only observable at certain directions. Our pixelated non-imaging micro-optics approach can enable efficient radiative cooling, infrared spectroscopy, thermophotovoltaics, and thermal camouflaging.
热辐射本质上是宽带的、非相干的且无方向性的。将热能优先定向发射的能力不仅具有根本重要性,而且对于许多热传感、成像和能量设备所需的高辐射效率至关重要。多年来,人们利用共振和传播模式设计了不同的光子材料和结构,以产生定向热发射。然而,这种热发射是窄带且偏振的,导致热传递效率有限。在此,我们通过像素化定向微发射器,实验证明了对热辐射进行超宽带、与偏振无关的定向控制。我们紧凑的像素化定向微发射器通过非成像光学原理实现了对热辐射的可调角度控制,在不同视角下产生了较大的发射率对比度。利用这个平台,我们进一步创建了一个像素化红外显示器,其中的信息仅在特定方向上可观察到。我们的像素化非成像微光学方法可实现高效辐射冷却、红外光谱学、热光伏和热伪装。