Gradient Pores Enhance Charge Storage Density of Carbonaceous Cathodes for Zn-Ion Capacitor.

Li, Xinyuan; Cai, Congcong; Hu, Ping; Zhang, Bao; Wu, Peijie; Fan, Hao; Chen, Zhuo; Zhou, Liang et al. · Adv Mater · 2024

basic_science · Level V

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Abstract

Engineering carbonaceous cathode materials with adequately accessible active sites is crucial for unleashing their charge storage potential. Herein, activated meso-microporous shell carbon (MMSC-A) nanofibers are constructed to enhance the zinc ion storage density by forming a gradient-pore structure. A dominating pore size of 0.86 nm is tailored to cater for the solvated [Zn(H<sub>2</sub>O)<sub>6</sub>]<sup>2+</sup>. Moreover, these gradient porous nanofibers feature rapid ion/electron dual conduction pathways and offer abundant active surfaces with high affinity to electrolyte. When employed in Zn-ion capacitors (ZICs), the electrode delivers significantly enhanced capacity (257 mAh g<sup>-1</sup>), energy density (200 Wh kg<sup>-1</sup> at 78 W kg<sup>-1</sup>), and cyclic stability (95% retention after 10 000 cycles) compared to nonactivated carbon nanofibers electrode. A series of in situ characterization techniques unveil that the improved Zn<sup>2+</sup> storage capability stems from size compatibility between the pores and [Zn(H<sub>2</sub>O)<sub>6</sub>]<sup>2+</sup>, the co-adsorption of Zn<sup>2+</sup>, H<sup>+</sup>, and SO<sub>4</sub> <sup>2-</sup>, as well as reversible surface chemical interaction. This work presents an effective method to engineering meso-microporous carbon materials toward high energy-density storage, and also offers insights into the Zn<sup>2+</sup> storage mechanism in such gradient-pore structures.