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    Observation of non-Hermiticity-induced unpolarized Landau levels in honeycomb circuit networks

    Chaohua Wu1,2,*, Xuewei Zhang1,3,*,†, Juan Kang1,2, Zhenxing Cui3, Mou Yan1,4,‡, and Gang Chen1,2,3,§

    • 1Laboratory of Zhongyuan Light, School of Physics, Zhengzhou University, Zhengzhou 450001, China
    • 2Key Laboratory of Materials Physics, Ministry of Education, School of Physics, Zhengzhou University, Zhengzhou 450001, China
    • 3State Key Laboratory of Quantum Optics Technologies and Devices, Institute of Laser Spectroscopy, Shanxi University, Taiyuan 030006, China
    • 4Institute of Quantum Materials and Physics, Henan Academy of Sciences, Zhengzhou 450046, China

    • *These authors contributed equally to this work.
    • †Contact author: xuewei_zhang@zzu.edu.cn
    • ‡Contact author: yanmou@zzu.edu.cn
    • §Contact author: chengang971@163.com

    Phys. Rev. B 112, 224302 – Published 1 December, 2025

    DOI: https://doi.org/10.1103/wdnb-2y2s

    Abstract

    Landau levels play a crucial role in exploring fundamental phenomena of condensed-matter physics. Recently, a new paradigm for generating Landau levels by means of non-Hermiticity has been proposed. Notably, the zeroth Landau level states here are unpolarized, unlike the sublattice-polarized states in Hermitian Dirac systems. However, due to the challenges of implementing spatially varying dissipation and large gain-loss terms, the experimental demonstration of such Landau level has remained elusive. Here, we present an experimental observation in honeycomb circuit networks. Specifically, we construct a circuit lattice consisting of two types of non-Hermitian configurations to realize a large pseudomagnetic field. Through measuring the admittance spectrum and voltage responses, we successfully observe the unpolarized zeroth Landau level and Hall-like edge states in the non-Hermitian Dirac circuit lattice. Extending the system to a synthetic 3D non-Hermitian Weyl circuit, we further observe the non-Hermiticity-induced chiral LLs and surface modes. Our work paves the way for studying non-Hermitian quantum Hall physics and may be useful for designing novel topological devices.

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