Issue 21, 2023

π–π stacking of unsaturated sulfonates on natural graphite enables a green and cost-effective cathode for high-voltage dual-ion batteries

Abstract

A sustainable and cost-effective energy storage system is the research focus at present and also the development direction of the future. A green and cost-effective cathode material for high-voltage dual-ion batteries (DIBs) is presented in this work through the artificial implantation of unsaturated organic sulfonates on the surface of natural graphite (NG) particles via a low-cost and green synthesis route. It is interesting to discover and validate that π–π stacking interactions exist between the π-bonds of unsaturated sulfonates and graphite layers through both practical experiments and density functional theory simulations. The C[triple bond, length as m-dash]C bond-containing propyne sulfonate (PyS) exhibits stronger π–π stacking interactions on graphite layers than the C[double bond, length as m-dash]C bond-containing allyl sulfonate and C–C bond-containing propane sulfonate. The PyS layer works as an artificial and highly stable cathode/electrolyte interphase (CEI), which effectively precludes electrolyte decomposition, reduces interfacial resistance and protects the NG cathode from structural degradation. The as-prepared NG@PyS exhibits outstanding cycling performance as the cathode material of DIBs by virtue of the high adhesion capability of PyS on graphite.

Graphical abstract: π–π stacking of unsaturated sulfonates on natural graphite enables a green and cost-effective cathode for high-voltage dual-ion batteries

Supplementary files

Article information

Article type
Paper
Submitted
26 May 2023
Accepted
21 Sep 2023
First published
22 Sep 2023

Green Chem., 2023,25, 8770-8777

π–π stacking of unsaturated sulfonates on natural graphite enables a green and cost-effective cathode for high-voltage dual-ion batteries

K. Zhang, D. Li, Q. Qu, J. Shao, Y. Jiang, L. Lv, Z. Lin and H. Zheng, Green Chem., 2023, 25, 8770 DOI: 10.1039/D3GC01802D

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