Steering lithium and potassium storage mechanism in covalent organic frameworks by incorporating transition metal single atoms

Author:

Cao Yingnan12ORCID,Xu Qing3ORCID,Sun Yi1ORCID,Shi Jixin2ORCID,Xu Yi1,Tang Yongfu4,Chen Xiudong5,Yang Shuai67,Jiang Zheng8,Um Han-Don9,Li Xiaopeng2,Wang Yong1

Affiliation:

1. Department of Chemical Engineering, School of Environmental and Chemical Engineering, Shanghai University, Shanghai 200444, People’s Republic of China

2. State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Materials Science and Engineering, Donghua University, Shanghai 201620, People’s Republic of China

3. Center for Low-Carbon Conversion Science and Engineering, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, People’s Republic of China

4. Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology, Yanshan University, Qinhuangdao 066004, People’s Republic of China

5. School of Chemistry and Chemical Engineering, Jiangxi Province Engineering Research Center of Ecological Chemical Industry, Jiujiang University, Jiujiang 332005, People’s Republic of China

6. Shanghai Synchrotron Radiation Facility, Zhangjiang Lab, Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201203, People’s Republic of China

7. Shanghai Institute of Applied Physics, Chinese Academy of Science, Shanghai 201800, People’s Republic of China

8. National Synchrotron Radiation Laboratory, University of Science and Technology of China, Hefei 230029, People’s Republic of China

9. Department of Chemical Engineering, Kangwon National University, Chuncheon, Gangwon 24341, Republic of Korea

Abstract

Organic electrodes mainly consisting of C, O, H, and N are promising candidates for advanced batteries. However, the sluggish ionic and electronic conductivity limit the full play of their high theoretical capacities. Here, we integrate the idea of metal-support interaction in single-atom catalysts with π–d hybridization into the design of organic electrode materials for the applications of lithium (LIBs) and potassium-ion batteries (PIBs). Several types of transition metal single atoms (e.g., Co, Ni, Fe) with π–d hybridization are incorporated into the semiconducting covalent organic framework (COF) composite. Single atoms favorably modify the energy band structure and improve the electronic conductivity of COF. More importantly, the electronic interaction between single atoms and COF adjusts the binding affinity and modifies ion traffic between Li/K ions and the active organic units of COFs as evidenced by extensive in situ and ex situ characterizations and theoretical calculations. The corresponding LIB achieves a high reversible capacity of 1,023.0 mA h g −1 after 100 cycles at 100 mA g −1 and 501.1 mA h g −1 after 500 cycles at 1,000 mA g −1 . The corresponding PIB delivers a high reversible capacity of 449.0 mA h g −1 at 100 mA g −1 after 150 cycles and stably cycled over 500 cycles at 1,000 mA g −1 . This work provides a promising route to engineering organic electrodes.

Publisher

Proceedings of the National Academy of Sciences

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