材料科学
动力学
阴极
窗口(计算)
化学工程
理论(学习稳定性)
复合材料
热稳定性
结构稳定性
化学稳定性
工作(物理)
纳米技术
电极
作者
Ju Huang,Yunchen Ge,Guanjie Yan,Q Chen,Lei Shi,Qilin Tong,Jiali Tong,Meng Qin,Yongbin He,Yan Cheng,Zhaozhe Yu
标识
DOI:10.1021/acsami.6c04639
摘要
(LMFP) cathodes possess high operating voltages, yet their application is severely hindered by sluggish electron/lithium-ion transport kinetics and interfacial instability during cycling. To address these challenges, this work proposes a surface engineering strategy utilizing a boron-doped carbon coating to modulate the interfacial kinetics of LMFP. The introduction of boron modifies the local electronic structure, inducing defects and holes that facilitate Li-ion migration, while simultaneously maintaining the layer's physical continuity and protective function against manganese dissolution. Within the investigated doping range, the 2% B-doped sample exhibits the best equilibrium between rate performance and cyclability, retaining 95.66% capacity after 100 cycles at 1 C and 93.20% after 300 cycles at 5 C, significantly outperforming the pristine sample (82% and 74%, respectively). In situ electrochemical impedance spectroscopy (EIS) combined with distribution of relaxation times (DRT) analysis reveals that the coating synergistically reduces interfacial charge-transfer resistance throughout the charge-discharge process. Consequently, this study defines an optimal boron-doping window to successfully navigate the trade-off between achieving rapid Li-ion kinetics and ensuring robust interfacial stability in olivine cathodes.
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