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KVOPO4 : A New High Capacity Multielectron Na-Ion Battery Cathode

Jia Ding; Yuh-chieh Lin; Jue Liu; Jatinkumar Rana; Hanlei Zhang; Hui Zhou; Iek-heng Chu; Kamila M Wiaderek; Fredrick Omenya; Natasha A Chernova; Karena W Chapman; Louis F J Piper; Shyue Ping Ong; M Stanley Whittingham

Sodium ion batteries have attracted much attention in recent years, due to the higher abundance and lower cost of sodium, as an alternative to lithium ion batteries. However, a major challenge is their lower energy density. In this work, we report a novel multi-electron cathode material, KVOPO4 , for sodium ion batteries. Due to the unique polyhedral framework, the V3+ {$\leftrightarrow$} V4+ {$\leftrightarrow$} V5+ redox couple was for the first time fully activated by sodium ions in a vanadyl phosphate phase. The KVOPO4 based cathode delivered reversible multiple sodium (i.e. maximum 1.66 Na + per formula unit) storage capability, which leads to a high specific capacity of 235 Ah kg-1 . Combining an average voltage of 2.56 V vs. Na/Na + , a high practical energy density of over 600 Wh kg-1 was achieved, the highest yet reported for any sodium cathode material. The cathode exhibits a very small volume change upon cycling (1.4\% for 0.64 sodium and 8.0\% for 1.66 sodium ions). Density functional theory (DFT) calculations indicate that the KVOPO4 framework is a 3D ionic conductor with a reasonably, low Na+ migration energy barrier of {$\approx$}450 meV, in line with the good rate capability obtained.

National University of Singapore
College of Design and Engineering
Department of Materials Science and Engineering
9 Engineering Drive 1, Blk EA, #03-09
Singapore 117575
Singapore 

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