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Published on: November 11, 2013
High-Energy-Density Cathode Material Achieved by Upgrading Low-Voltage Li3V2O5 via Ni Doping
Chengzhi Hu1, Can Wang1, Guoxian Wang1
1School of Chemistry and Chemical Engineering, Anhui Province Key Laboratory of Value-Added Catalytic Conversion and Reaction Engineering, Hefei University of Technology, Hefei 230009, China.
Abstract:
High-energy-density lithium-ion batteries have great need for cathode materials with exceptional specific discharge capacity. Li3V2O5 shows great potential because of its high capacity (e.g., 266 mA h g-1 at 0.1 A g-1). However, its low-lying voltage plateau (∼0.6 V vs Li+/Li) restricts its use exclusively to anode applications. This work presents for the first time the development of Li3V2O5 as a high-energy-density cathode material through Ni doping. Structural analysis reveals that Ni-doped Li3V2O5 forms a cation-disordered rock-salt phase with a uniform distribution of Ni. Introducing 1 mol % Ni (denoted as LVON2) prolongs the V-based plateau (∼2.5 V) and results in an additional discharge capacity of 35 mA h g-1. In particular, a plateau ascribed to Ni2+/Ni3+ redox reaction emerges at ∼3.5 V, contributing an extra discharge capacity of 42 mA h g-1. Consequently, LVON2 achieves high specific discharge capacities of 270.8 mA h g-1 at 50 mA g-1 and 339.4 mA h g-1 at 20 mA g-1 (corresponding to an energy density of 837 W h kg-1), surpassing the pristine Li3V2O5 and many latest cathode materials. Density functional theory calculation shows that Ni preferentially occupies the empty tetragonal sites in Li3V2O5, leading to a larger off-center displacement of the neighboring LiO6 octahedra and the expansion of unit cell volume. This structural manipulation improves the electrochemical dynamics of Li3V2O5 with a better rate capability (143.3 mA h g-1 for LVON2 vs 94.1 mA h g-1 for the pristine sample at 1000 mA g-1) and a decreased charge-transfer resistance (159.2 Ω for LVON2 vs 278.6 Ω for the pristine sample). Differential scanning calorimetry and finite element analysis also reveal the enhanced thermal stability of Ni-doped Li3V2O5 at both material and full battery levels. This advancement lays a solid foundation for the development of Li3V2O5-based cathode materials for high-energy-density lithium-ion batteries.

