Non-Hermitian funneling in anisotropic media

Fuente: arXiv
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Main Authors: Tian, Yuan, Gao, Nankun, Zhang, Xiujuan, Lu, Ming-Hui, Chen, Yan-Feng
Format: Preprint
Published: 2025
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_version_ 1866916909850558464
author Tian, Yuan
Gao, Nankun
Zhang, Xiujuan
Lu, Ming-Hui
Chen, Yan-Feng
author_facet Tian, Yuan
Gao, Nankun
Zhang, Xiujuan
Lu, Ming-Hui
Chen, Yan-Feng
contents Non-Hermitian skin effect (NHSE) has emerged as a distinctive phenomenon enabling non-Bloch wave manipulation. However, it has been limited to discrete lattices requiring fine-tuned onsite gain/loss or asymmetric couplings. Here, moving beyond these discrete models, we realize novel NHSE in uniform media by leveraging anisotropy of non-Hermitian density tensors. Experiments based on an acoustic anisotropic metamaterial demonstrate that enabled by the NHSE, wave energy can be directed toward and collected at specific boundaries, exhibiting broadband and wide-angle characteristics. This intriguing phenomenon is termed non-Hermitian wave funneling, which, remarkably, occurs under uniform non-Hermitian modulations, free of fine-tuning. Furthermore, we identify a second-order NHSE, enabling wave funneling toward corners. Our work establishes a paradigm for exploring NHSE in uniform media, advancing the fundamental understanding of non-Hermitian physics and providing novel mechanisms for non-Bloch wave control in metamaterials or even natural materials without delicate tuning.
format Preprint
id arxiv_https___arxiv_org_abs_2508_14495
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Non-Hermitian funneling in anisotropic media
Tian, Yuan
Gao, Nankun
Zhang, Xiujuan
Lu, Ming-Hui
Chen, Yan-Feng
Applied Physics
Materials Science
Non-Hermitian skin effect (NHSE) has emerged as a distinctive phenomenon enabling non-Bloch wave manipulation. However, it has been limited to discrete lattices requiring fine-tuned onsite gain/loss or asymmetric couplings. Here, moving beyond these discrete models, we realize novel NHSE in uniform media by leveraging anisotropy of non-Hermitian density tensors. Experiments based on an acoustic anisotropic metamaterial demonstrate that enabled by the NHSE, wave energy can be directed toward and collected at specific boundaries, exhibiting broadband and wide-angle characteristics. This intriguing phenomenon is termed non-Hermitian wave funneling, which, remarkably, occurs under uniform non-Hermitian modulations, free of fine-tuning. Furthermore, we identify a second-order NHSE, enabling wave funneling toward corners. Our work establishes a paradigm for exploring NHSE in uniform media, advancing the fundamental understanding of non-Hermitian physics and providing novel mechanisms for non-Bloch wave control in metamaterials or even natural materials without delicate tuning.
title Non-Hermitian funneling in anisotropic media
topic Applied Physics
Materials Science
url https://arxiv.org/abs/2508.14495