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    Obstructed atomic insulator inorganic electrides

    Yang Li1,2, Jianhua Wang3,*, Shifeng Qian4,†, Weizhen Meng5,‡, and Xiaotian Wang6

    • 1Advanced Manufacturing and New Materials Technology Center, Chongqing Youth Vocational & Technical College, Chongqing 401320, China
    • 2School of Science, Tianjin University, Tianjin 300354, China
    • 3School of Material Science and Engineering, Tiangong University, Tianjin 300387, China
    • 4Anhui Province Key Laboratory for Control and Applications of Optoelectronic Information Materials, Department of Physics, Anhui Normal University, Wuhu, Anhui 241000, China
    • 5College of Physics, Hebei Key Laboratory of Photophysics Research and Application, Hebei Normal University, Shijiazhuang 050024, China
    • 6Institute for Superconducting and Electronic Materials (ISEM), Faculty of Engineering and Information Sciences, University of Wollongong, Wollongong 2500, Australia

    • *Contact author: jhwang2020@163.com
    • †Contact author: qiansf@ahnu.edu.cn
    • ‡Contact author: mengweizhen@hebtu.edu.cn

    Phys. Rev. B 112, 205112 – Published 12 November, 2025

    DOI: https://doi.org/10.1103/6dv1-7ddd

    Abstract

    To date, 1788 obstructed atomic insulators (OAIs) characterized by charge centers not localized at atomic positions have been identified. However, only a small fraction qualify as insulating inorganic electrides (IEs), making this subclass—OAI IEs—a largely unexplored territory in materials science. Herein, through an unconventional screening approach, we uncover 33 such OAI IEs from the full OAI dataset, including six electrically neutral and seven negatively charged candidates, fundamentally challenging the longstanding view that IEs are intrinsically electron rich in nature. Moreover, the synergistic effect between the electronegativity difference of cations and anions, bond lengths, and the size of interstitial positions determines the presence of interstitial anion electrons in OAI IEs. Unlike previously reported metallic IEs, the insulating nature of the OAI IEs enables the emergence of multidimensional boundary phenomena, including coexisting surface and hinge states. We identify 22 candidates that host a low work function [Φ(WF)<4 eV], a feature that markedly boosts the efficiency of ammonia synthesis. These results involve the screening, investigation, and application of insulating IEs, effectively linking the potential of insulating IEs to fields such as topological quantum chemistry, boundary engineering, and energy research.

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