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High energy-density and reversibility of iron fluoride cathode enabled via an intercalation-extrusion reaction.


ABSTRACT: Iron fluoride, an intercalation-conversion cathode for lithium ion batteries, promises a high theoretical energy density of 1922 Wh kg-1. However, poor electrochemical reversibility due to repeated breaking/reformation of metal fluoride bonds poses a grand challenge for its practical application. Here we report that both a high reversibility over 1000 cycles and a high capacity of 420 mAh g-1 can be realized by concerted doping of cobalt and oxygen into iron fluoride. In the doped nanorods, an energy density of ~1000 Wh kg-1 with a decay rate of 0.03% per cycle is achieved. The anion's and cation's co-substitutions thermodynamically reduce conversion reaction potential and shift the reaction from less-reversible intercalation-conversion reaction in iron fluoride to a highly reversible intercalation-extrusion reaction in doped material. The co-substitution strategy to tune the thermodynamic features of the reactions could be extended to other high energy conversion materials for improved performance.

SUBMITTER: Fan X 

PROVIDER: S-EPMC5998086 | biostudies-literature | 2018 Jun

REPOSITORIES: biostudies-literature

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High energy-density and reversibility of iron fluoride cathode enabled via an intercalation-extrusion reaction.

Fan Xiulin X   Hu Enyuan E   Ji Xiao X   Zhu Yizhou Y   Han Fudong F   Hwang Sooyeon S   Liu Jue J   Bak Seongmin S   Ma Zhaohui Z   Gao Tao T   Liou Sz-Chian SC   Bai Jianming J   Yang Xiao-Qing XQ   Mo Yifei Y   Xu Kang K   Su Dong D   Wang Chunsheng C  

Nature communications 20180613 1


Iron fluoride, an intercalation-conversion cathode for lithium ion batteries, promises a high theoretical energy density of 1922 Wh kg<sup>-1</sup><sub>.</sub> However, poor electrochemical reversibility due to repeated breaking/reformation of metal fluoride bonds poses a grand challenge for its practical application. Here we report that both a high reversibility over 1000 cycles and a high capacity of 420 mAh g<sup>-1</sup> can be realized by concerted doping of cobalt and oxygen into iron fluo  ...[more]

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