Edge‐Site‐Free and Topological‐Defect‐Rich Carbon Cathode for High‐Performance Lithium‐Oxygen Batteries

Author:

Yu Wei1ORCID,Yoshii Takeharu2,Aziz Alex3,Tang Rui1,Pan Zheng‐Ze1,Inoue Kazutoshi1,Kotani Motoko1,Tanaka Hideki4,Scholtzová Eva5,Tunega Daniel6,Nishina Yuta7,Nishioka Kiho8,Nakanishi Shuji89,Zhou Yi1011,Terasaki Osamu1011,Nishihara Hirotomo12ORCID

Affiliation:

1. Advanced Institute for Materials Research (WPI‐AIMR) Tohoku University Sendai 9808577 Japan

2. Institute of Multidisciplinary Research for Advanced Materials Tohoku University Sendai 9808577 Japan

3. JSPS International Research Fellow (Advanced Institute for Materials Research (WPI‐AIMR) Tohoku University Sendai 9808577 Japan

4. Research Initiative for Supra‐Materials (RISM) Shinshu University Nagano 3808553 Japan

5. Institute of Inorganic Chemistry of Slovak Academy of Sciences Dúbravská cesta 9 Bratislava 84536 Slovakia

6. Institute of Soil Research University of Natural Resources and Life Sciences Peter‐Jordan‐Strasse 82 Wien 1190 Austria

7. Research Core for Interdisciplinary Sciences Okayama University 3‐1‐1 Tsushima‐Naka Kita‐ku Okayama 7008530 Japan

8. Research Center for Solar Energy Chemistry Graduate School of Engineering Science Osaka University Toyonaka Osaka 5608531 Japan

9. Innovative Catalysis Science Division Institute for Open and Transdisciplinary Research Initiatives (ICS‐OTRI) Osaka University Suita Osaka 5650871 Japan

10. Centre for High‐Resolution Electron Microscopy (CℏEM) School of Physical Science and Technology ShanghaiTech University Shanghai 201210 China

11. Shanghai Key Laboratory of High‐Resolution Electron Microscopy ShanghaiTech University Shanghai 201210 China

Abstract

AbstractThe rational design of a stable and catalytic carbon cathode is crucial for the development of rechargeable lithium‐oxygen (LiO2) batteries. An edge‐site‐free and topological‐defect‐rich graphene‐based material is proposed as a pure carbon cathode that drastically improves LiO2 battery performance, even in the absence of extra catalysts and mediators. The proposed graphene‐based material is synthesized using the advanced template technique coupled with high‐temperature annealing at 1800 °C. The material possesses an edge‐site‐free framework and mesoporosity, which is crucial to achieve excellent electrochemical stability and an ultra‐large capacity (>6700 mAh g−1). Moreover, both experimental and theoretical structural characterization demonstrates the presence of a significant number of topological defects, which are non‐hexagonal carbon rings in the graphene framework. In situ isotopic electrochemical mass spectrometry and theoretical calculations reveal the unique catalysis of topological defects in the formation of amorphous Li2O2, which may be decomposed at low potential (∼ 3.6 V versus Li/Li+) and leads to improved cycle performance. Furthermore, a flexible electrode sheet that excludes organic binders exhibits an extremely long lifetime of up to 307 cycles (>1535 h), in the absence of solid or soluble catalysts. These findings may be used to design robust carbon cathodes for LiO2 batteries.

Funder

Japan Association for Chemical Innovation

Publisher

Wiley

Subject

General Physics and Astronomy,General Engineering,Biochemistry, Genetics and Molecular Biology (miscellaneous),General Materials Science,General Chemical Engineering,Medicine (miscellaneous)

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