Extraordinarily stable and wide‐temperature range sodium/potassium‐ion batteries based on 1D SnSe2‐SePAN composite nanofibers

Author:

Wang Yiyi1,Xiao Fuyu1,Chen Xi2,Xiong Peixun3ORCID,Lin Chuyuan1,Wang Hong‐En4,Wei Mingdeng5,Qian Qingrong16,Chen Qinghua16,Zeng Lingxing16

Affiliation:

1. Engineering Research Center of Polymer Green Recycling of Ministry of Education, College of Carbon Neutral Modern Industry Fujian Normal University Fuzhou the People's Republic of China

2. Université de Picardie Jules Verne, Laboratoire de Réactivité et Chimie des Solides (LRCS) Amiens France

3. Inorganic Chemistry I Technische Universität Dresden Dresden Germany

4. College of Physics and Electronics Information, Yunnan Key Laboratory of Optoelectronic Information Technology Yunnan Normal University Kunming the People's Republic of China

5. Fujian Provincial Key Laboratory of Electrochemical Energy Storage Materials Fuzhou University Fuzhou the People's Republic of China

6. Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), College of Chemistry Nankai University Tianjin the People's Republic of China

Abstract

AbstractDeveloping electrodes with long lifespan and wide‐temperature adaptability is crucial important to achieve high‐performance sodium/potassium‐ion batteries (SIBs/PIBs). Herein, the SnSe2‐SePAN composite was fabricated for extraordinarily stable and wide‐temperature range SIBs/PIBs through a coupling strategy between controllable electrospinning and selenylation, in which SnSe2 nanoparticles were uniformly encapsulated in the SePAN matrix. The unique structure of SnSe2‐SePAN not only relieves drastic volume variation but also guarantees the structural integrity of the composite, endowing SnSe2‐SePAN with excellent sodium/potassium storage properties. Consequently, SnSe2‐SePAN displays a high sodium storage capacity and excellent feasibility in a wide working temperature range (−15 to 60°C: 300 mAh g−1/700 cycles/−15°C; 352 mAh g−1/100 cycles/60°C at 0.5 A g−1). At room temperature, it delivers a record‐ultralong cycling life of 192 mAh g−1 that exceeds 66 000 cycles even at 15 A g−1. It exhibits extremely superb electrochemical performance in PIBs (157 mAh g−1 exceeding 15 000 cycles at 5 A g−1). The ex situ XRD and TEM results attest the conversion‐alloy mechanism of SnSe2‐SePAN. Also, computational calculations verify that SePAN takes an important role in intensifying the electrochemical performance of SnSe2‐SePAN electrode. Therefore, this study breaks new ground on solving the polyselenide dissolution issue and improving the wide temperature workable performance of sodium/potassium storage. image

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Fujian Province

Publisher

Wiley

Subject

Materials Chemistry,Surfaces, Coatings and Films,Materials Science (miscellaneous),Electronic, Optical and Magnetic Materials

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