Bimetallic Sulfide Sb2S3/FeS2 Heterostructure Anchored in a Carbon Skeleton for Fast and Stable Sodium Storage

Author:

Yu Lianghao12,Li Zhuanxia1,Cai Wu3,Xie Haoliang1,Wang Jing1,Ling Yihan4,Huang Fei2,Li Hengzheng2,Zhu Guang2,Jin Huile1ORCID,Wang Shun1

Affiliation:

1. Key Lab of Advanced Energy Storage and Conversion Zhejiang Province Key Lab of Leather Engineering College of Chemistry and Materials Engineering Wenzhou University Wenzhou Zhejiang 325035 China

2. Key Laboratory of Spin Electron and Nanomaterials of Anhui Higher Education Institutes Suzhou University Suzhou 234000 China

3. State Key Laboratory for Fine Exploration and Intelligent Development of Coal Resources China University of Mining and Technology Xuzhou Jiangsu 221116 China

4. School of Chemical Engineering and Technology China University of Mining and Technology Xuzhou 221116 China

Abstract

AbstractSodium‐ion batteries (SIBs) are a promising substitute for lithium batteries due to their abundant resources and low cost. Metal sulfides are regarded as highly attractive anode materials due to their superior mechanical stability and high theoretical specific capacity. Guided by the density functional theory (DFT) calculations, 3D porous network shaped Sb2S3/FeS2 composite materials with reduced graphene oxide (rGO) through a simple solvothermal and calcination method, which is predicted to facilitate favorable Na+ ion diffusion, is synthesized. Benefiting from the well‐designed structure, the resulting Sb2S3/FeS2 exhibit a remarkable reversible capacity of 536 mAh g−1 after 2000 cycles at a current density of 5 A g−1 and long high‐rate cycle life of 3000 cycles at a current density of 30 A g−1 as SIBs anode. In situ and ex situ analyses are carried out to gain further insights into the storage mechanisms and processes of sodium ions in Sb2S3/FeS2@rGO composites. The significantly enhanced sodium storage capacity is attributed to the unique structure and the heterogeneous interface between Sb2S3 and FeS2. This study illustrates that combining rGO with heterogeneous engineering can provide an ideal strategy for the synthesis of new hetero‐structured anode materials with outstanding battery performance for SIBs.

Funder

Innovative Research Group Project of the National Natural Science Foundation of China

Publisher

Wiley

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