3D Crown Ether Covalent Organic Framework as Interphase Layer toward High‐Performance Lithium Metal Batteries

Author:

Zheng Shuang12,Bi Shuai3,Fu Yubin45,Wu Yang6,Liu Minghao12,Xu Qing12ORCID,Zeng Gaofeng12

Affiliation:

1. CAS Key Laboratory of Low‐Carbon Conversion Science and Engineering Shanghai Advanced Research Institute (SARI) Chinese Academy of Sciences (CAS) Shanghai 201210 P. R. China

2. School of Chemical Engineering University of Chinese Academy of Sciences 19A Yuquan Road Beijing 100049 P. R. China

3. Department of Chemistry City University of Hong Kong Kowloon Hong Kong China

4. Center for Advancing Electronics Dresden (CFAED) and Faculty of Chemistry and Food Chemistry Technische Universität Dresden 01062 Dresden Germany

5. Max Planck Institute of Microstructure Physics Weinberg 2 06120 Halle Germany

6. School of Environmental and Chemical Engineering Shanghai University Shanghai 200444 P. R. China

Abstract

AbstractThe practical application of lithium (Li) metal batteries is inhibited by accumulative Li dendrites and continuous active Li consumption during cycling, which results in a low Coulombic efficiency and short lifetime. Constructing artificial solid‐electrolyte interphase (SEI) layer in Li anode, such as 2D covalent organic frameworks (COFs), is an effective strategy to restrain the formation of Li dendrites and improve cycling performance. However, the exploration of 3D COFs as protecting layers is rarely reported, because of the preconception that the interconnect pores in 3D COFs eventually cause Li dendrites in disordered direction. 3D crown ether‐based COF with ffc topology as interphase layer, in which the crown ether units are arranged in parallel and vertical orientation along the electrode, is demonstrated. The strong coupling effect between the crown ether and Li+ accelerates Li+ diffusion kinetics and enables homogeneous Li+ flux, resulting in a high Li+ transference number of 0.85 and smooth Li deposition in 3D direction. Li/COF‐Cu cells display a lower Li‐nucleation overpotential (17.4 mV) and high average Coulombic efficiency of ≈98.6% during 340 cycles with COF incorporation. This work gives a new insight into designing COFs for energy storage systems.

Funder

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Wiley

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