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Ni3S2 anchored to N/S co-doped reduced graphene oxide with highly pleated structure as a sulfur host for lithium–sulfur batteries.

Authors :
Guo, Daying
Zhang, Zihe
Xi, Bin
Yu, Zhisheng
Zhou, Zhen
Chen, Xi'an
Source :
Journal of Materials Chemistry A; 2/21/2020, Vol. 8 Issue 7, p3834-3844, 11p
Publication Year :
2020

Abstract

Reported herein is the investigation of a unique cathode candidate for Li–S batteries, i.e. Ni<subscript>3</subscript>S<subscript>2</subscript>/(N, S)-RGO-type hybrid materials, which are expected to optimize battery performance by elevating the utilization of sulfur and chemically confining the adsorption/diffusion of polysulfide. Versatile structural and compositional characterizations confirmed the uniform growth and strong chemical coupling of nanostructured Ni<subscript>3</subscript>S<subscript>2</subscript> on the N/S co-doped RGO matrix. Rich physical and chemical properties were revealed, namely, the large specific surface area and pore volume, which are beneficial for polysulfide capture, and the 3D conductive network supporting rapid charge transfer to the Ni<subscript>3</subscript>S<subscript>2</subscript>-polysulfide interface to improve the intrinsic equilibrium of the polysulfide. Specifically, the integration of ∼28.2 wt% of Ni<subscript>3</subscript>S<subscript>2</subscript> produced a highly pleated composite with the largest BET specific surface area (618 m<superscript>2</superscript> g<superscript>−1</superscript>) and pore volume (1.73 cm<superscript>3</superscript> g<superscript>−1</superscript>) among the hybrids studied. This typical material also performed the best in the battery test, recording ultra-high cycling stability over 1000 cycles at the current density of 3C with the capacity decay of 0.023% per cycle. As the sulfur loading per unit area became as dense as 5.8 mg cm<superscript>−2</superscript>, the specific capacities were measured as 6.72 mA h cm<superscript>−2</superscript> (at 0.05C), while the capacity retention for the 200-cycle test (at 1C) was still preserved above 72.5%. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
20507488
Volume :
8
Issue :
7
Database :
Complementary Index
Journal :
Journal of Materials Chemistry A
Publication Type :
Academic Journal
Accession number :
141804661
Full Text :
https://doi.org/10.1039/c9ta12235d