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    Three-dimensional valley-locked waveguide transport enabled by phononic Weyl nodes

    Mudi Wang1,2,*, Qiyun Ma1, Hao Wu1, Yi Fang1, Ruo-Yang Zhang2, Dongyang Wang2, Hongwei Jia2,3, Jing Hu2,4, Zhengyou Liu1,5,† et al.

    C. T. Chan2,6,‡

    • *Contact author: mudiwang@whu.edu.cn
    • †Contact author: zyliu@whu.edu.cn
    • ‡Contact author: phchan@ust.hk

    Phys. Rev. B 112, 144302 – Published 3 October, 2025

    DOI: https://doi.org/10.1103/b2f7-7cs5

    Abstract

    The flexible control of wave transport in three-dimensional (3D) space has long been a challenge. Here, we take advantage of the 3D linear dispersion of Weyl nodes and design a sandwiched valley-Hall crystal for robust acoustic waveguide transport. On the grounds of negligible intervalley scattering, such transport is valley locked and the waveguide shape can be altered in an arbitrary way. We experimentally validate such Weyl-node-based 3D topological transport by fabricating and characterizing a phononic crystal, and robust transmission for distinctive waveguide configurations has been observed. Our work introduces different avenues for implementing 3D valley-locked transport and offers a platform for topological device design.

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