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Rational design and synthesis of advanced Na3·32Fe2·34(P2O7)2 cathode with multiple-dimensional N-doped carbon matrix.

Authors :
Liu, Yumei
Wang, Enhui
Rajagopalan, Ranjusha
Hua, Weibo
Zhong, Benhe
Zhong, Yanjun
Wu, Zhenguo
Guo, Xiaodong
Dou, Shixue
Li, Juntao
Source :
Journal of Power Sources. Feb2019, Vol. 412, p350-358. 9p.
Publication Year :
2019

Abstract

Abstract The application of Na 3·32 Fe 2·34 (P 2 O 7) 2 sodium cathodes with abundant resources and robust structure is severely hindered by the poor electronic conductivity. A multiple-dimensional carbon matrix could provide a satisfactory electronic conductivity as well as facilitate structural stability via wrapping and bridging of the active material. With an analysis of the raw materials and their respective reactions, Na 3·32 Fe 2·34 (P 2 O 7) 2 @C (NFP Cs) composites with a hybrid carbon matrix have been synthesized. The reactions in the system result in versatile N-doped carbon structures, including thin carbon layers, carbon rods, carbon nanosheets and carbon scaffolds. This integrated carbon architecture wraps and bridges the Na 3·32 Fe 2·34 (P 2 O 7) 2 particles, not only promoting electronic conductivity, but also serving as a buffer to minimize volume changes and stabilize the structural integrity of the composite. Furthermore, the nitrogen doping could generate more defects and active sites, which provide improved conductivity and better redox activity. Finally, the synthesized composite material has demonstrated impressive rate capabilities (100 mAh g−1 at 0.1 C and 66 mAh g−1 at 20 C), and outstanding cycling stability (90.5% at 1 C after 1000 cycles, 89.9% at 5 C after 2000 cycles). This study takes the utmost advantage of the synthesis, which is also easily scaled-up for mass production. Highlights • Na 3.32 Fe 2.34 (P 2 O 7) 2 @C composites are prepared via solid-state route. • Na 3.32 Fe 2.34 (P 2 O 7) 2 with a hybrid carbon matrix is investigated. • The multiple-dimensional N-doped carbon improves electronic conductivity. • Na 3.32 Fe 2.34 (P 2 O 7) 2 @C exhibits excellent electrochemical performance. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03787753
Volume :
412
Database :
Academic Search Index
Journal :
Journal of Power Sources
Publication Type :
Academic Journal
Accession number :
134069086
Full Text :
https://doi.org/10.1016/j.jpowsour.2018.11.038