Department of Electrical and Computer Engineering, Rice University, Houston, TX, 77005, USA.
Applied Physics Graduate Program, Smalley-Curl Institute, Rice University, Houston, TX, 77005, USA.
Adv Mater. 2019 Nov;31(44):e1904154. doi: 10.1002/adma.201904154. Epub 2019 Sep 18.
All open systems that exchange energy with their environment are non-Hermitian. Thermal emitters are open systems that can benefit from the rich set of physical phenomena enabled by their non-Hermitian description. Using phase, symmetry, chirality, and topology, thermal radiation from hot surfaces can be unconventionally engineered to generate light with new states. Such thermal emitters are necessary for a wide variety of applications in sensing and energy conversion. Here, a non-Hermitian selective thermal emitter is experimentally demonstrated, which exhibits passive PT-symmetry in thermal emission at 700 °C. Furthermore, the effect of internal phase of the oscillator system on far-field thermal radiation is experimentally demonstrated. The ability to tune the oscillator phase provides new pathways for both engineering and controlling selective thermal emitters for applications in sensing and energy conversion.
所有与环境交换能量的开放系统都是非厄米的。热发射器是开放系统,它们可以受益于其非厄米描述所带来的丰富物理现象。利用相位、对称性、手性和拓扑,热表面的热辐射可以被非常规地设计用来产生具有新状态的光。这种热发射器在传感和能量转换的各种应用中是必不可少的。在这里,实验演示了一种非厄米选择性热发射器,它在 700°C 的热发射中表现出被动 PT 对称性。此外,实验还证明了振荡器系统内部相位对远场热辐射的影响。调谐振荡器相位的能力为工程学和控制选择性热发射器提供了新的途径,可应用于传感和能量转换。