Zhenjie Yao, Wenyao Zhang, Xinyu Chen, Junjie Cui, Boyuan Zhu, Jiahao Tang, Yangrui Hou, Jiarong Chen, Li Tang, Jianrong Zeng, Hongbing Jia, Markus Antonietti, Junwu Zhu
The structural integrity of layered VOPO4 frameworks critically determines their electrochemical performance in aqueous zinc-ion batteries, yet the highly ordered stacking of VOPO4 renders it susceptible to lattice stress accumulation and chemo-mechanical degradation during cycling, causing rapid capacity fading and a shortened battery lifespan. Herein, we show a strategy to alleviate these limitations through partial metal substitution in the VOPO4 lattice, enabling the modulation of local coordination environments and mitigating lattice and cycling induced stress. As a proof-of-concept, theoretical calculations and experimental validation on Mn-substituted VOPO4 reveal shortened M-O bond along the c-axis and the formation of Mn-O-P-O-V delocalized structure. These modifications introduce subtle lattice distortions and generate percolation channels that enable more facile, ordered Zn2+ migration, facilitating uniform lattice stress distribution. Real-time monitoring of interfacial stress during cycling identifies that Mn incorporation induces electronic redistribution and lattice anisotropy, promoting balanced intra-layer (a/b-axis) stress accommodation. Therefore, Mn-substituted VOPO4 exhibits higher specific capacity and cycling stability, with 91.0% capacity retention over 2000 cycles at 1 A g-1. This intra-layer anisotropy engineering strategy offers a practical route for mitigating dissolution and strain effects during cycling, paving ways for the development of high-energy-density positive electrodes with cycling durability.