Carbon Composites for a High-Energy Lithium–Sulfur Battey with a Glyme-Based Electrolyte
Journal article, 2017

A comparative study of sulfur composites using carbon of various natures, namely, graphite, mesocarbon microbeads, and multi-walled carbon nanotubes, is performed in lithium battery design and evaluation. Morphological and structural analyses, by means of SEM and XRD, cyclic voltammetry and galvanostatic cycling in lithium cells are employed for characterization of the materials. Tetraethylene glycol dimethyl ether containing lithium trifluoromethansulfonate is considered the preferred electrolyte for performing the electrochemical tests. Prior to use in cells, the electrolyte characteristics in terms of 1H, 7Li, and 19F nuclei self-diffusion coefficients, ionic conductivity, and ionic association degree are studied by combining NMR and impedance spectroscopy. The best lithium–sulfur composite reported herein achieves a capacity higher than 500 mAh g?1 over 140 cycles with no sign of dendrite formation or failure. This performance is considered sufficiently suitable for the development of high-energy lithium batteries, in particular, considering the expected safety of the cells by employing a nonflammable glyme electrolyte instead of a conventional carbonate-based one.

lithium

energy storage

batteries

sulfur

carbon

Author

Lorenzo Carbone

Sapienza University of Rome

Jing Peng

City University of New York (CUNY)

Marco Agostini

Chalmers, Physics, Condensed Matter Physics

Mallory Gobet

City University of New York (CUNY)

Matthew Devany

City University of New York (CUNY)

B Scrosati

Helmholtz

Steve Greenbaum

City University of New York (CUNY)

Jusef Hassoun

University of Ferrara

ChemElectroChem

2196-0216 (eISSN)

Vol. 4 1 209-215

Driving Forces

Sustainable development

Subject Categories

Physical Sciences

Chemical Sciences

DOI

10.1002/celc.201600586

More information

Latest update

9/15/2020