posted on 2022-06-07, 15:35authored byJiaying Liao, Xinxin Zhang, Qinghua Zhang, Qiao Hu, Yafei Li, Yichen Du, Jianzhi Xu, Lin Gu, Xiaosi Zhou
With
high theoretical capacity and operating voltage, KVPO<sub>4</sub>F
is a potential high energy density cathode material for
potassium-ion batteries. However, its performance is usually limited
by F loss, poor electronic conductivity, and unsteady electrode/electrolyte
interface. Herein, a simple one-step sintering process is developed,
where vanadium–oxalate–phosphite/phosphate frameworks
and fluorinated polymer are used to synthesize carbon-coated KVPO<sub>4</sub>F nanoplates. It is found that the V–F–C bond
generated by fluorinated-polymer-derived carbon at the interface of
KVPO<sub>4</sub>F/C nanoplates diminishes the F loss, as well as enhances
K-ions migration ability and the electronic conductivity of KVPO<sub>4</sub>F. The as-synthesized KVPO<sub>4</sub>F/C cathode delivers
a reversible capacity of 106.5 mAh g<sup>–1</sup> at 0.2 C,
a high working voltage of 4.28 V, and a rate capability with capacity
of 73.8 mAh g<sup>–1</sup> at the ultrahigh current density
of 100 C. In addition, a KVPO<sub>4</sub>F/C//soft carbon full cell
exhibits a high energy density of 235.5 Wh kg<sup>–1</sup>.