Extremely Thin Perfect Absorber by Generalized Multipole Bianisotropic Effect

Author:

Ma Hao12,Evlyukhin Andrey B.3,Miroshnichenko Andrey E.4,Zhu Fengjie1,Duan Siyu1,Wu Jingbo12,Zhang Caihong12,Chen Jian12,Jin Biaobing12,Padilla Willie J.5,Fan Kebin12ORCID

Affiliation:

1. Research Institute of Superconductor Electronics (RISE) & Key Laboratory of Optoelectronic Devices and Systems with Extreme Performances of MOE School of Electronic Science and Engineering, Nanjing University Nanjing 210023 China

2. Purple Mountain Laboratories Nanjing 211111 China

3. Institute of Quantum Optics, Leibniz Universität Hannover Welfengarten 1 30167 Hannover Germany

4. School of Engineering and Information Technology University of New South Wales at Canberra Northcott Drive Canberra ACT 2610 Australia

5. Duke University, Department of Electrical and Computer Engineering Durham NC 27708 USA

Abstract

AbstractSymmetry breaking plays a crucial role in understanding the fundamental physics underlying numerous physical phenomena, including the electromagnetic response in resonators, giving rise to intriguing effects such as directional light scattering, supercavity lasing, and topologically protected states. This work demonstrates that adding a small fraction of lossy metal (as low as 1 × 10−6 in volume) to a lossless dielectric resonator breaks inversion symmetry (IS), thereby lifting its degeneracy, leading to a strong bianisotropic response. In the case of the metasurface composed of such resonators, this effect leads to unidirectional perfect absorption while maintaining nearly perfect reflection from the opposite direction. It has developed more general Onsager‐Casimir relations for the polarizabilities of particle arrays, taking into account the contributions of quadrupoles, which shows that bianisotropy is not solely due to dipoles, but also involves high‐order multipoles. The experimental validation demonstrates an extremely thin terahertz‐perfect absorber with a wavelength‐to‐thickness ratio of up to 25,000, where the material thickness is only 2% of the theoretical minimum thickness dictated by the fundamental limit. The findings can pave a new route to design devices for applications involving optical‐to‐heat conversion processes.

Funder

U.S. Department of Energy

National Natural Science Foundation of China

Deutsche Forschungsgemeinschaft

Australian Research Council

Publisher

Wiley

Subject

Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials

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