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Frogspawn‐Coral‐Like Hollow Sodium Sulfide Nanostructured Cathode for High‐Rate Performance Sodium–Sulfur Batteries.

Authors :
Wang, Chuanlong
Wang, Huan
Hu, Xiaofei
Matios, Edward
Luo, Jianmin
Zhang, Yiwen
Lu, Xuan
Li, Weiyang
Source :
Advanced Energy Materials. Feb2019, Vol. 9 Issue 5, pN.PAG-N.PAG. 1p.
Publication Year :
2019

Abstract

Room‐temperature (RT) sodium–sulfur (Na–S) batteries are attractive cost‐effective platforms as the next‐generation energy storage systems by using all earth‐abundant resources as electrode materials. However, the slow kinetics of Na–S chemistry makes it hard to achieve high‐rate performance. Herein, a facile and scalable approach has been developed to synthesize hollow sodium sulfide (Na2S) nanospheres embedded in a highly hierarchical and spongy conductive carbon matrix, forming an intriguing architecture similar to the morphology of frogspawn coral, which has shown great potential as a cathode for high‐rate performance RT Na–S batteries. The shortened Na‐ion diffusion pathway benefits from the hollow structures together with the fast electron transfer from the carbon matrix contributes to high electrochemical reactivity, leading to superior electrochemical performance at various current rates. At high current densities of 1.4 and 2.1 A g−1, high initial discharge capacities of 980 and 790 mAh g−1sulfur can be achieved, respectively, with reversible capacities stabilized at 600 and 400 mAh g−1sulfur after 100 cycles. As a proof of concept, a Na‐metal‐free Na–S battery is demonstrated by pairing the hollow Na2S cathode with tin‐based anode. This work provides guidance on rational materials design towards the success of RT high‐rate Na–S batteries. Frogspawn‐coral‐like hollow Na2S nanospheres embedded in a carbon matrix are synthesized and serve as a high‐rate performance cathode for Na–S batteries. This highly hierarchical structure significantly promotes Na–S electrochemical activity, contributing to a superior electrochemical performance at high current densities. By using this Na2S cathode with fully‐sodiated state, a Na‐metal‐free Na–S battery is demonstrated. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
16146832
Volume :
9
Issue :
5
Database :
Academic Search Index
Journal :
Advanced Energy Materials
Publication Type :
Academic Journal
Accession number :
134429900
Full Text :
https://doi.org/10.1002/aenm.201803251