Gao Lina, Li Guijie, Chen Qinlong, Liu Tingyu, He Tian, Li Jianhua, Wang Linjun, Kong Xueqian
Department of Physical Medicine and Rehabilitation, Sir Run Run Shaw Hospital, Zhejiang University, Hangzhou 310027, PR China.
Key Laboratory of Excited-State Materials of Zhejiang Province, Department of Chemistry, Zhejiang University, Hangzhou 310027, PR China.
ACS Nano. 2024 May 14;18(19):12468-12476. doi: 10.1021/acsnano.4c01831. Epub 2024 May 3.
Na super ionic conductor (NASICON)-type polyanionic vanadium fluorophosphate NaVO(PO)F (NVOPF) is a promising cathode material for high-energy sodium-ion batteries. The dynamic diffusion and exchange of sodium ions in the lattice of NVOPF are crucial for its electrochemical performance. However, standard characterizations are mostly focused on the as-synthesized material without cycling, which is different from the actual battery operation conditions. In this work, we investigated the hopping processes of sodium in NVOPF at the intermediate charging state with Na solid-state nuclear magnetic resonance (ssNMR) and density functional theory (DFT) calculations. Our experimental characterizations revealed six distinct sodium coordination sites in the intermediate structure and determined the exchange rates among these sites at variable temperatures. The theoretical calculations showed that these dynamic processes correspond to different ion transport pathways in the crystalline lattice. Our combined experimental and theoretical study uncovered the underlying mechanisms of the ion transport in cycled NVOPF and these understandings may help the optimization of cathode materials for sodium-ion batteries.
钠超离子导体(NASICON)型聚阴离子钒氟磷酸盐NaVO(PO)F(NVOPF)是一种很有前景的高能钠离子电池正极材料。钠离子在NVOPF晶格中的动态扩散和交换对其电化学性能至关重要。然而,标准表征大多集中在未经循环的合成态材料上,这与实际电池运行条件不同。在这项工作中,我们利用钠固体核磁共振(ssNMR)和密度泛函理论(DFT)计算研究了处于中间充电状态的NVOPF中钠的跳跃过程。我们的实验表征揭示了中间结构中有六个不同的钠配位位点,并确定了这些位点在不同温度下之间的交换速率。理论计算表明,这些动态过程对应于晶格中不同的离子传输途径。我们结合实验和理论的研究揭示了循环后的NVOPF中离子传输的潜在机制,这些认识可能有助于优化钠离子电池的正极材料。