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Fast-pulverization enabled simultaneous enhancement on cycling stability and rate capability of C@NiFe2O4 hierarchical fibrous bundle

journal contribution
posted on 2024-11-16, 03:57 authored by Zerui Chen, Yu Zhang, Xiaoling Wang, Wenping Sun, Shi DouShi Dou, Xin Huang, Bi Shi
Electrochemical-grinding induced pulverization is the origin of capacity fading in NiFe 2 O 4 . Increasing current density normally accelerates the pulverization that deteriorates lithium storage properties of NiFe 2 O 4 . Here we show that the high current induced fast-pulverization can serve as an efficient activation strategy for quick and simultaneous enhancement on cycling stability and rate capability of NiFe 2 O 4 nanoparticles (NPs) that are densely packed on the hierarchically structured carbon nanofiber strand. At a high current density, the pulverization of NiFe 2 O 4 NPs can be accomplished in a few cycles exposing more active surface. During the fast-pulverization, the hierarchically structured carbon nanofiber strand maintains conductive contact for the de nsely packed NiFe 2 O 4 NPs regardless of charge or discharge, which also effectively suppresses the repetitive breaks and growths of solid-electrolyte-interphase (SEI) via multiple-level structural adaption that favourites the quick formation of a thin and dense SEI, thus providing strong interparticle connectivity with enhancement on cycling stability and rate capability (e.g. doubled capacity). Our findings demonstrate the potential importance of high current induced fast-pulverization as an efficient activation strategy for achieving durable electrode materials suffering from electrochemical-grinding effects.

Funding

Lithium-Ion Conducting Sulfide Cathodes for All-Solid-State Li–S Batteries

Australian Research Council

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Development of the next generation battery storage system for smart grid

Australian Research Council

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Citation

Chen, Z., Zhang, Y., Wang, X., Sun, W., Dou, S., Huang, X. & Shi, B. (2017). Fast-pulverization enabled simultaneous enhancement on cycling stability and rate capability of C@NiFe2O4 hierarchical fibrous bundle. Journal of Power Sources, 363 209-217.

Journal title

Journal of Power Sources

Volume

363

Pagination

209-217

Language

English

RIS ID

115632

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