稀有金属(英文版)2024,Vol.43Issue(5) :2080-2092.DOI:10.1007/s12598-023-02582-9

Pyridine-regulated Sb@InSbS3 ultrafine nanoplates as high-capacity and long-cycle anodes for sodium-ion batteries

Jia-Ying Ren Xiang-Lin Yu Chang-Miao Chen Xin-Yu Hu Ting Yang Ming Zhang
稀有金属(英文版)2024,Vol.43Issue(5) :2080-2092.DOI:10.1007/s12598-023-02582-9

Pyridine-regulated Sb@InSbS3 ultrafine nanoplates as high-capacity and long-cycle anodes for sodium-ion batteries

Jia-Ying Ren 1Xiang-Lin Yu 1Chang-Miao Chen 2Xin-Yu Hu 1Ting Yang 1Ming Zhang2
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作者信息

  • 1. College of Materials Science and Engineering and College of Science,Central South University of Forestry and Technology,Changsha 410004,China
  • 2. College of Semiconductors(College of Integrated Circuits),Changsha Semiconductor Technology and Application Innovation Research Institute,Hunan University,Changsha 410082,China
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Abstract

Sb-based materials exhibit considerable poten-tial for sodium-ion storage owing to their high theoretical capacities.However,the bulk properties of Sb-based materials always result in poor cycling and rate perfor-mances.To overcome these issues,pyridine-regulated Sb@InSbS3 ultrafine nanoplates loaded on reduced gra-phene oxides(Sb@InSbS3@rGO)were designed and syn-thesized.During the synthesis process,pyridine was initially adopted to coordinate with In3+,and uniformly dispersed In2S3 ultrafine nanoplates on reduced graphene oxide were generated after sulfidation.Next,partial In3+was exchanged with Sb3+,and Sb@InSbS3@rGO was obtained by using the subsequent annealing method.The unique structure of Sb@InSbS3@rGO effectively short-ened the transfer path of sodium ions and electrons and provided a high pseudocapacitance.As the anode in sodium-ion batteries,the Sb@InSbS3@rGO electrode demonstrated a significantly higher reversible capacity,better stability(445 mAh·g-1 at 0.1 A·g-1 after 200 cycles and 212 mAh·g-1 at 2 A·g-1 after 1200 cycles),and superior rate(210 mAh·g-1 at 6.4 A·g-1)than the elec-trode without pyridine(355 mAh·g-1 at 0.1 A·g-1 after 55 cycles and 109 mAh·g-1 at 2 A·g-1 after 770 cycles).Furthermore,full cells were assembled by using the Sb@InSbS3@rGO as anode and Na3V2(PO4)3 as cathode,which demonstrated good cycling and rate performances and exhibited promising application prospects.These results indicate that adjusting the microstructure of elec-trode materials through coordination balance is A·good strategy for obtaining high-capacity,high-rate,and long-cycle sodium storage performances.

Key words

Sodium-ion battery/Sb-based anode material/Pyridine coordination/Reduced size nanostructure/Half/full cell

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基金项目

National Natural Science Foundation of China(42007138)

National Natural Science Foundation of China(51772082)

National Natural Science Foundation of China(51804106)

Natural Science Foundation of Hunan Province(2023JJ10005)

出版年

2024
稀有金属(英文版)
中国有色金属学会

稀有金属(英文版)

CSTPCDCSCDEI
影响因子:0.801
ISSN:1001-0521
参考文献量61
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