First principles calculations on lithium diffusion near the surface and in the bulk of Fe-doped LiCoPO 4 .
Kuan-Ching WuChieh-Ming HsiehBor Kae ChangPublished in: Physical chemistry chemical physics : PCCP (2022)
The olivine phosphate LiCoPO 4 is a prospective cathode material in high-voltage lithium-ion batteries. During lithium diffusion, the ions must overcome the diffusion energy barrier near the surface and in the bulk. Experimental studies have shown that Fe doping can enhance the electrochemical performance of LiCoPO 4 with a doping concentration of x = 0.2 (LiFe 0.2 Co 0.8 PO 4 ). DFT calculations can provide detailed understanding of the lithium diffusion mechanism, structural stability, and electronic properties for Fe-doped LiCoPO 4 and elucidate the origins for this improvement from a microscopic viewpoint. In this study, the electronic structure of Fe-doped LiCoPO 4 was calculated via first principles and compared with that of pristine LiCoPO 4 . To investigate the surface properties of LiCoPO 4 , surface energies with low indices were calculated. The results showed that the (010) surface has the lowest surface energy. Minimum energy diffusion pathways and energy barriers were calculated using the NEB method. Our calculations showed that the energy barrier for lithium-ion diffusion can be reduced by Fe doping modification. Furthermore, we investigated the diffusion processes of polarons and lithium ions migrating simultaneously. This study has implications for further application of LiCoPO 4 as a cathode material.