阴极
离子键合
离子
化学物理
机制(生物学)
二价
锂(药物)
化学
质子
材料科学
物理化学
物理
量子力学
医学
内分泌学
有机化学
作者
Lei Xu,Jing Shi,Dong Jin,Peng Liu,Baozhen Sun,Shuying Zhong,Musheng Wu,Bo Xu,Chuying Ouyang
摘要
Understanding ionic migration mechanisms in solid-state materials is of paramount importance for advancing rechargeable batteries technologies. Combining first-principle calculations and ab initio molecular dynamics (MD) simulations, we reveal a novel mechanism of ionic migration in 3D tunnel-type H2V2O5, a newly developed cathode material formed by proton pre-intercalated α-V2O5, where hydrogen bonds dynamic play a critical regulatory role. We demonstrate the rotation behavior of -OH groups and the synergistic coupling between the -OH rotation and divalent ion migration in H2V2O5. The paddle-wheel mechanism, as we referred to here, enables ultralow migration barriers (Eb) of 0.56 eV for Zn2+ and 0.44 eV for Mg2+. In a sharp contrast, this mechanism was not observed for monovalent cations (such as Li+) using the climbing image nudged elastic band (NEB) method, which yields Eb of 0.57 eV. However, by MD simulations, we obtained the activation energy Ea of 0.23 eV for Li+ migration. The discrepancy was found to lie in the paddle-wheel mechanism, which needs to be activated at elevated temperature (≥150 K) for Li+ migration and, therefore, cannot be captured in NEB calculation at 0 K. Our results thus highlight the importance of understanding the paddle-wheel mechanism, meanwhile, the potential of proton pre-intercalated α-V2O5 for cathode materials of both monovalent and divalent ion batteries.
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