Heteroatom-Engineered Carbon Coatings Enable Fluorophosphate-Rich Interphases for a Thermally Robust LiFePO 4 Cathode

材料科学 碳纤维 阴极 化学工程 复合材料 冶金 沉积(地质) 炭黑 工作(物理) 涂层
作者
Ji Won Cho,Yong Joon Park
出处
期刊:ACS omega [American Chemical Society]
卷期号:11 (27): 40718-40728
标识
DOI:10.1021/acsomega.6c04299
摘要

High Resolution Image Download MS PowerPoint Slide The renewed interest in LiFePO 4 (LFP) as a cost-effective and intrinsically safe cathode material for electric vehicles and large-scale energy storage systems has intensified efforts to overcome its limited electronic and ionic transport properties. Although carbon coating is widely used to improve electronic conductivity in LFP cathodes, a purely carbonaceous surface can accelerate electrolyte decomposition and interfacial impedance growth, particularly under high-temperature conditions. To address this issue, this study developed a scalable heteroatom-engineered carbon coating strategy by incorporating LiPF 6 during carbon layer formation to create fluorophosphate-containing modified carbon shells on LFP particles. Structural analyses confirmed that LiPF 6 incorporation did not alter the olivine structure of LFP but introduced fluorine-containing species (mainly F – ) into the carbon matrix while modifying carbon crystallinity. Among the investigated compositions, 0.8 wt % LiPF 6 provided the optimal balance between electronic conductivity and interfacial stabilization, resulting in improved rate capability and high-temperature durability. X-ray photoelectron spectroscopy and impedance analyses revealed that the modified carbon layer promoted the formation of fluorophosphate-rich interphase species (Li x PO y F z ), which served as a chemically stable cathode–electrolyte interphase. This interfacial chemistry suppressed electrolyte decomposition, reduced charge-transfer resistance, and preserved structural integrity during thermally accelerated cycling. These findings demonstrate that LiPF 6 -derived heteroatom-modified carbon coatings can transform the carbon layer from a passive conductor into an active interfacial stabilizer, offering a practical route toward high-rate, high-temperature LFP-based lithium-ion batteries.
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