2024/10/31 by Shuihua Yang, Yang, Shuihua, Jianfeng, Chen +7
Chemistry · Engineering · #FOS: Physical sciences #Optics (physics.optics) #Other Condensed Matter (cond-mat.other) #Photonic and Optical Devices #Semiconductor Lasers and Optical Devices #Spectroscopy and Laser Applications
paper · pdf · doi:10.48550/arxiv.2410.23651
openalex publication_date 2024/10/31 · openalex created_date 2025/10/10 · openalex updated_date 2026/07/28
Nonreciprocal thermophotonics, by breaking Lorentz reciprocity, exceeds current theoretical efficiency limits, unlocking opportunities to energy devices and thermal management. However, energy transfer in current systems is highly defect-sensitive. This sensitivity is further amplified at deep subwavelength scales by inevitable multi-source interactions, interface wrinkles, and manufacturing tolerances, making precise control of thermal photons increasingly challenging. Here, we demonstrate a topological one-way heat transport in a deep-subwavelength thermophotonic lattice. This one-way heat flow, driven by global resonances, is strongly localized at the geometric boundaries and exhibits exceptional robustness against imperfections and disorder, achieving nearly five orders of radiative enhancement. Our findings offer a blueprint for developing robust thermal systems capable of withstanding strong perturbations.