Tetrahedral Bonding Structure (Ni3‐Se) Induced by Lattice‐Distortion of Ni to Achieve High Catalytic Activity in Na–Se Battery

Author:

Li Jiayin1ORCID,Qian Cheng1,Hu Yunfei1,Huang Jianfeng1,Chen Guanjun1,Cao Liyun1,Wang Fangmin1,Kajiyoshi Koji2,Zhao Yong3,Liu Yijun3,Li Zhenjiang4,Yang Hong5,Xu Zhanwei1

Affiliation:

1. School of Material Science and Engineering International S&T Cooperation Foundation of Shaanxi Province Shaanxi University of Science and Technology Xi'an 710021 P. R. China

2. Kochi University Research Laboratory of Hydrothermal Chemistry Kochi 780–8520 Japan

3. Guangdong Mona Lisa Group Co. Ltd. Foshan Guangdong 528211 P. R. China

4. College of Materials Science and Engineering Qingdao University of Science and Technology Qingdao Shandong 266042 P. R. China

5. Xi'an Sefu Energy Technology Co., LTD Xi'an P. R. China

Abstract

AbstractFabrication of transition‐metal catalytic materials is regarded as a promising strategy for developing high‐performance sodium–selenium (Na–Se) batteries. However, more systematic explorations are further demanded to find out how their bonding interactions and electronic structures can affect the Na storage process. This study finds that lattice‐distorted nickel (Ni) structure can form different bonding structures with Na2Se4, providing high activity to catalyze the electrochemical reactions in Na–Se batteries. Using this Ni structure to prepare electrode (Se@NiSe2/Ni/CTs) can realize rapid charge transfer and high cycle stability of the battery. The electrode exhibits high storage performance of Na+; i.e., 345 mAh g⁻1 at 1 C after 400 cycles, and 286.4 mAh g⁻1 at 10 C in rate performance test. Further results reveal the existence of a regulated electronic structure with upshifts of the d‐band center in the distorted Ni structure. This regulation changes the interaction between Ni and Na2Se4 to form a Ni3–Se tetrahedral bonding structure. This bonding structure can provide higher adsorption energy of Ni to Na2Se4 to facilitate the redox reaction of Na2Se4 during the electrochemical process. This study can inspire the design of bonding structure with high performance in conversion‐reaction‐based batteries.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Shaanxi Province

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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