空位缺陷
电化学
电导率
阴极
氧气
扩散
杂质
晶体结构
材料科学
锂(药物)
化学
无机化学
分析化学(期刊)
电极
结晶学
物理化学
热力学
医学
物理
有机化学
色谱法
内分泌学
作者
J. X. Zhang,Xiwen Ke,Yong Wang,Juanjuan Xue
标识
DOI:10.1149/1945-7111/ad6294
摘要
The presence of oxygen vacancy defects significantly impacts the crystal structure and electrochemical attributes of phosphate cathodes. In this investigation, LiMn 0.65 Fe 0.35 PO 4 materials with varying levels of oxygen vacancy defects were synthesized via hydrogen plasma-induced reduction. It was observed that the content of oxygen vacancy defects on the crystal surface increased proportionately with the rise in hydrogen (H 2 ) flow rate. Notably, the LMFP-3 sample, prepared with an H 2 flow rate of 10 ml min −1 , demonstrated superior electrochemical performance, characterized by a 159.7 mAh g −1 discharge capacity at 0.1 C and a remarkable 99.8% capacity retention at 5 C after 200 cycles. This enhancement in electrochemical performance is attributed to the improved intrinsic conductivity of the LiMn 0.65 Fe 0.35 PO 4 material due to the presence of oxygen vacancy defects. However, it is important to note that an excessively high H 2 flow rate can lead to the formation of Fe 2 P impurities, which hinder lithium ion (Li + ) diffusion. Furthermore, theoretical calculations conducted using density functional theory provide a rational explanation for the observed improvement in electronic conductivity. The introduction of oxygen vacancy defects results in a significant reduction in the Band gap, which is highly beneficial for enhancing the intrinsic conductivity of the LiMn 0.65 Fe 0.35 PO 4 materials.
科研通智能强力驱动
Strongly Powered by AbleSci AI