材料科学
阴极
纳米花
化学工程
无机化学
溶剂热合成
降级(电信)
纳米技术
纳米颗粒
储能
作者
Chaoqi Shen,Wei Lin,Lulu Liu,Peng Yang,Chenxi Fu,Lianbang Wang
标识
DOI:10.1021/acsami.6c01298
摘要
The escalating demand for lithium-ion batteries emphasizes the urgency of developing cobalt- and nickel-free cathodes ascribed to the high cost of these two metals. LiMn x Fe 1– x PO 4 (LMFP) emerges as a promising candidate due to high operating voltage compared to LiFePO 4 while suffering from inferior kinetics and cycling instability. This study demonstrates that precise pH control during the solvothermal process is pivotal for optimizing the LMFP/C microstructure and performance; furthermore, the mechanism of morphology evolution along with pH value and reaction duration is summarized. LiMn 0.7 Fe 0.3 PO 4 /C composites synthesized under varied pH conditions were thoroughly characterized and electrochemically evaluated. Results reveal that a moderately acidic environment (pH 4) facilitates the formation of a unique nanoflower architecture composed of (010)-oriented nanosheets with a highly graphitized carbon coating and minimal antisite defects after calcination. This optimal structure endows LiMn 0.7 Fe 0.3 PO 4 /C composite sample LMP/C-P4-24 with superior Li + diffusion kinetics and charge-transfer efficiency, enabling a high discharge capacity (151.5 mAh g –1 at 1 C), outstanding cycling stability (96.1% retention after 500 cycles), and excellent rate capability (110.3 mAh g –1 at 10 C). In contrast, synthesis at higher pH induces structural disorder and inferior carbon quality with rapid performance degradation. This work establishes pH-mediated structural control as a powerful strategy for high-performance, resource-conscious, Mn-rich LiMn 0.7 Fe 0.3 PO 4 cathode materials.
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