Tailoring hard carbon interfaces in carbonate-based electrolytes for sodium-ion hybrid capacitors
Ziyang Jia , Shunkang Hou , Xi Chen , Lili Liu , Xinhai Yuan , Lijun Fu , Yuhui Chen , Yuping Wu
Energy Materials ›› 2025, Vol. 5 ›› Issue (7) : 500073
The poor rate performance of hard carbon (HC) in carbonate electrolytes limits its applicability in hybrid capacitors, primarily due to the low working potential and the slow Na+ transport kinetics within the potential plateau region. The slow desolvation of Na+ at the electrode surface and sluggish transport of Na+ through the solid electrolyte interface are the critical factors contributing to this issue. In this study, Co3O4 nanoparticles are uniformly self-grown on the HC surface to modulate the surface chemistry of HC. The introduction of Co3O4 not only facilitates the desolvation of Na+ and reduces internal resistance, but also provides additional active sites for Na+ storage as an active material. As a result of these dual effects, HC125@Co3O4 (a composite with an optimal
Hard carbon / Co3O4 / solvated structure / sodium ion / hybrid capacitors
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