Novel Bake-in-Salt Method for the Synthesis of Mesoporous Mn 3 O 4 @C Networks with Superior Cycling Stability and Rate Performance

The commercial applications of Mn O in lithium ion batteries (LIBs) are greatly restricted because of the low electrical conductivity and poor cycling stability at high current density. To overcome these drawbacks, mesoporous Mn O @C networks were designed and synthesized via an improved bake-in-sal...

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Veröffentlicht in:ACS applied materials & interfaces 2016-12, Vol.8 (51), p.35163-35171
Hauptverfasser: Sun, Yuanwei, Jiao, Ranran, Zuo, Xintao, Tang, Rongfeng, Su, Huaifen, Xu, Dan, Sun, Dezhi, Zeng, Suyuan, Zhang, Xianxi
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Sprache:eng
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Zusammenfassung:The commercial applications of Mn O in lithium ion batteries (LIBs) are greatly restricted because of the low electrical conductivity and poor cycling stability at high current density. To overcome these drawbacks, mesoporous Mn O @C networks were designed and synthesized via an improved bake-in-salt method using NaCl as the assistant salt, and without the protection of inert gas. The added NaCl plays a versatile role during the synthetic process, including the heat conducting medium, removable hard template and protective layer. Because of the homogeneous distribution of Mn O nanoparticles within the carbon matrix, the as-prepared Mn O @C networks show excellent cycling stability in LIBs. After cycling for 950 times at a current density of 1 A g , the discharge capacity of the as-prepared Mn O @C networks is determined to be 754.4 mA h g , showing superior cycling stability as compared to its counterparts. The valuable and promising method, simple synthetic procedure and excellent cycling stability of the as-prepared Mn O @C networks makes it a promising candidate as the potential anode material for LIBs.
ISSN:1944-8244
1944-8252
DOI:10.1021/acsami.6b10121