Enabling Fast Na<sup>+</sup> Transfer Kinetics in the Whole-Voltage-Region of Hard-Carbon Anodes for Ultrahigh-Rate Sodium Storage.

Yin, Xiuping; Lu, Zhixiu; Wang, Jing; Feng, Xiaochen; Roy, Swagata; Liu, Xiangsi; Yang, Yong; Zhao, Yufeng et al. · Adv Mater · 2022

basic_science · Level V

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Abstract

Efficient electrode materials, that combine high power and high energy, are the crucial requisites of sodium-ion batteries (SIBs), which have unwrapped new possibilities in the areas of grid-scale energy storage. Hard carbons (HCs) are considered as the leading candidate anode materials for SIBs, however, the primary challenge of slow charge-transfer kinetics at the low potential region (<0.1 V) remains unresolved till date, and the underlying structure-performance correlation is under debate. Herein, ultrafast sodium storage in the whole-voltage-region (0.01-2 V), with the Na<sup>+</sup> diffusion coefficient enhanced by 2 orders of magnitude (≈10<sup>-7</sup> cm<sup>2</sup> s<sup>-1</sup> ) through rationally deploying the physical parameters of HCs using a ZnO-assisted bulk etching strategy is reported. It is unveiled that the Na<sup>+</sup> adsorption energy (E<sub>a</sub> ) and diffusion barrier (E<sub>b</sub> ) are in a positive and negative linear relationship with the carbon p-band center, respectively, and balance of E<sub>a</sub> and E<sub>b</sub> is critical in enhancing the charge-storage kinetics. The charge-storage mechanism in HCs is evidenced through comprehensive in(ex) situ techniques. The as prepared HCs microspheres deliver a record high rate performance of 107 mAh g<sup>-1</sup> @ 50 A g<sup>-1</sup> and unprecedented electrochemical performance at extremely low temperature (426 mAh g<sup>-1</sup> @ -40 °C).