Literature DB >> 27163232

Pomegranate-Structured Conversion-Reaction Cathode with a Built-in Li Source for High-Energy Li-Ion Batteries.

Xiulin Fan1, Yujie Zhu1, Chao Luo1, Liumin Suo1, Yan Lin1, Tao Gao1, Kang Xu2, Chunsheng Wang1.   

Abstract

Transition metal fluorides (such as FeF3 or CoF2) promise significantly higher theoretical capacities (>571 mAh g(-1)) than the cathode materials currently used in Li-ion batteries. However, their practical application faces major challenges that include poor electrochemical reversibility induced by the repeated bond-breaking and formation and the accompanied volume changes and the difficulty of building an internal Li source within the material so that a full Li-ion cell could be assembled at a discharged state without inducing further technical risk and cost issues. In this work, we effectively addressed these challenges by designing and synthesizing, via an aerosol-spray pyrolysis technique, a pomegranate-structured nanocomposite FeM/LiF/C (M = Co, Ni), in which 2-3 nm carbon-coated FeM nanoparticles (∼10 nm in diameter) and LiF nanoparticles (∼20 nm) are uniformly embedded in a porous carbon sphere matrix (100-1000 nm). This uniquely architectured nanocomposite was made possible by the extremely short pyrolysis time (∼1 s) and carbon coating in a high-temperature furnace, which prevented the overgrowth of FeM and LiF in the primordial droplet that serves as the carbon source. The presence of Ni or Co in FeM/LiF/C effectively suppresses the formation of Fe3C and further reduces the metallic particle size. The pomegranate architecture ensures the intimate contact among FeM, LiF, and C, thus significantly enhancing the conversion-reaction kinetics, while the nanopores inside the pomegranate-like carbon matrix, left by solvent evaporation during the pyrolysis, effectively accommodate the volume change of FeM/LiF during charge/discharge. Thus, the FeM/LiF/C nanocomposite shows a high specific capacity of >300 mAh g(-1) for more than 100 charge/discharge cycles, which is one of the best performances among all of the prelithiated metal fluoride cathodes ever reported. The pomegranate-structured FeM/LiF/C with its built-in Li source provides an inspiration to the practical application of conversion-reaction-type chemistries as next-generation cathode materials for high-energy density Li-ion batteries.

Entities:  

Keywords:  FeF3; conversion-reaction cathode materials; prelithiation; transition metal fluorides

Year:  2016        PMID: 27163232     DOI: 10.1021/acsnano.6b02309

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  3 in total

1.  High-Performance LiF@C-Coated FeF3·0.33H2O Lithium-Ion Batteries with an Ionic Liquid Electrolyte.

Authors:  Chaozhi Zeng; Chun Huang
Journal:  ACS Omega       Date:  2021-12-22

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

Authors:  Xiulin Fan; Enyuan Hu; Xiao Ji; Yizhou Zhu; Fudong Han; Sooyeon Hwang; Jue Liu; Seongmin Bak; Zhaohui Ma; Tao Gao; Sz-Chian Liou; Jianming Bai; Xiao-Qing Yang; Yifei Mo; Kang Xu; Dong Su; Chunsheng Wang
Journal:  Nat Commun       Date:  2018-06-13       Impact factor: 14.919

3.  Caging Na3V2(PO4)2F3 Microcubes in Cross-Linked Graphene Enabling Ultrafast Sodium Storage and Long-Term Cycling.

Authors:  Yangsheng Cai; Xinxin Cao; Zhigao Luo; Guozhao Fang; Fei Liu; Jiang Zhou; Anqiang Pan; Shuquan Liang
Journal:  Adv Sci (Weinh)       Date:  2018-07-07       Impact factor: 16.806

  3 in total

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