4.8 Article

Concunrent manipulation of anion and cation adsorption kinetics in pancake-like carbon achieves ultrastable potassium ion hybrid capacitors

Journal

ENERGY STORAGE MATERIALS
Volume 46, Issue -, Pages 10-19

Publisher

ELSEVIER
DOI: 10.1016/j.ensm.2021.12.047

Keywords

Carbon; Ion adsorption kinetics; Potassium ion hybrid capacitor; Anode; Cathode

Funding

  1. National Natural Sci-ence Foundation of China [51772284]
  2. Recruitment Pro-gram of Global Experts
  3. Fundamental Research Funds for the Central Universities [WK2060000016]
  4. Supercomputing Center of Univer-sity of Science and Technology of China
  5. TianHe-2 at LvLiang Cloud Computing Center of China

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The researchers prepared a bi-functional hierarchical porous carbon material with superior energy storage performance for potassium ion hybrid capacitors. The material exhibited high specific capacity, stable cycling capability, and high energy/power density. The enhanced potassium ion storage was attributed to the synergy of structure, electronic properties, and ion adsorption kinetics. This study is of great importance for large-scale energy storage.
Potassium ion hybrid capacitors (KIHCs) are one of the most promising candidate for large scale energy storage owing to the merits of high energy/power density, natural abundance and low cost. However, the sluggish ion adsorption kinetics on both electrodes results in unfavorable performance of KIHCs. Herein, we prepared bi-functional hierarchical porous P/N co-doped pancake-like carbon (PN-PanC), which exhibits superior K (+)/FSI- storage performance. Specifically, the PN-PanC delivers high specific capacity (385.8 mAh g(-1) at 100 mA g(-1)), stable cycling capability (2000 cycles with an average attenuation rate of 0.21 & PTSTHOUSND; at 1000 mA g(-1)) for anode application, and remarkable specific capacity (94.2 mAh g(-1) at 100 mA g(-1)) when evaluated as cathode. The origins of the concurrently enhanced K +/FSI- storage are studied by ex-situ XPS, in-situ Raman, EIS analysis and DFT calculations, which could be attributed to the synergy of hierarchical porous structure, exposed active sites, tuned electronic structure and enhanced ion adsorption kinetics. Importantly, the KIHCs devices exhibit both high energy density (155.9 Wh kg(-1) at 76.1 W kg(-1)) and high power density (11,309.1 W kg(-1) with 22.0 Wh kg(-1) retained) with ultra-long lifespan (93.4% capacity retention at 500 mA g(-1) after 20 K cycles).

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