High Capacitance Based on Vacancy Defective Porous Carbon in Ionic Liquid

Author:

Feng Shihao12,Zhao Qian1,Wang Junjun1,Zhang Wei1,Wang Weixiao1,Xu Ming3,Zhou Liang1,Mai Liqiang1ORCID,Zhao Dongyuan4,Liu Yong1ORCID

Affiliation:

1. State Key Laboratory of Advanced Technology for Materials Synthesis and Processing International School of Materials Science and Engineering Wuhan University of Technology Wuhan 430070 China

2. Longzihu New Energy Laboratory Henan University Zhengzhou 450046 China

3. Advanced Technology Institute University of Surrey Guildford Surrey GU2 7XH UK

4. Department of Chemistry and Laboratory of Advanced Materials College of Chemistry and Materials Fudan University Shanghai 200438 China

Abstract

AbstractPorous carbons have been extensively studied in electrochemical capacitors (ECs). However, low capacitance remains a limitation due to the electrical double layer (EDL) storage mechanism when porous carbons are used in ionic liquids (ILs) based ECs. Herein, the nitrogen‐derived vacancy defects in porous carbon nanospheres are found which can boost capacitive charge storage and present reversible high capacitance of 427 F g−1 in pure IL electrolyte, equal to a normalized area capacitance (CA) of 16 µF cm−2, surpassing the theoretical EDL CA (≈11 µF cm−2). When used as capacitive cathode, the assembled Lithium hybrid capacitor express high energy density of 635 Wh kg−1 based on active material under much high‐power density of 14.5 kW kg−1. A combination of control experiments and density functional theory investigation indicate that the EC's performance improvement mostly stems from strong interactions at vacancy defects, triggering extraordinary faradaic capacitance. The results shed light on defect engineering for realizing extra faradaic capacitance of carbon materials, and open up new opportunities for improving EC's energy density.

Funder

National Natural Science Foundation of China

National Key Research and Development Program of China

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing

Publisher

Wiley

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