Boosting the Electrochemi,cal Performance of Primary and Secondary Lithium Batteries with Mn-Doped All-Fluoride Cathodes

Transition metal fluorides are potentially high specific energy cathode materials of next-generation lithium batteries, and strategies to address their low conductivity typically involve a large amount of carbon coating, which reduces the specific energy of the electrode. In this study, Mn Fe F @CF...

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Veröffentlicht in:ACS applied materials & interfaces 2024-05
Hauptverfasser: Luo, Sifei, Gao, Meiting, Cai, Danmin, Zhu, Licai, Lai, Caiting, Peng, Yanqiu, Yue, Hongjun, Xie, Haijiao, Yuan, Zhongzhi
Format: Artikel
Sprache:eng
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Zusammenfassung:Transition metal fluorides are potentially high specific energy cathode materials of next-generation lithium batteries, and strategies to address their low conductivity typically involve a large amount of carbon coating, which reduces the specific energy of the electrode. In this study, Mn Fe F @CF was generated by the all-fluoride strategy, converting most of the carbon in Mn Fe F @C into electrochemical active CF through a controllable NF gas phase fluorination method, while still retaining a tightly bound graphite layer to provide initial conductivity, which greatly improved the energy density of the composite. This synergistic effect of nonfluorinated residual carbon (∼11%) and Mn doping ensures the electrochemical kinetics of the composite. The loading mass of the active substance had been increased to 86%. The theoretical and actual discharge capacity of Mn Fe F @CF composite was up to 765 mAh g (pure FeF is 712 mAh g ) and 728 mAh g , respectively. The discharge capacity at the high-voltage (3.0 V) platform was more than three times higher than that of the non-Mn-doped composite (FeF @CF ).
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.4c05178