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Journal ArticleDOI

Liquid electrolyte lithium/sulfur battery: Fundamental chemistry, problems, and solutions

Sheng S. Zhang
- 01 Jun 2013 - 
- Vol. 231, Iss: 231, pp 153-162
TLDR
Li et al. as discussed by the authors discussed the problems and solutions of liquid electrolyte Li/S battery and showed that the dissolution of lithium polysulfide (PS) is essential for the performance of a Li-S cell.
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This article is published in Journal of Power Sources.The article was published on 2013-06-01. It has received 1348 citations till now. The article focuses on the topics: Lithium–sulfur battery & Electrolyte.

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Citations
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Journal ArticleDOI

A lithium anode protection guided highly-stable lithium-sulfur battery

TL;DR: A Li3N protection layer is fabricated on the surface of a Li anode by an in situ method to suppress the shuttle effect on the basis of anode protection to retain the discharge capacity.
Journal ArticleDOI

Progress Towards Commercially Viable Li–S Battery Cells

TL;DR: A broad overview of how experimental parameters affect the performance of Li-S batteries is presented in this paper, extending the view on these batteries beyond sophisticated conductive sulfur hosts, which have been the primary focus of many studies in recent years.
Journal ArticleDOI

Carbon Materials for Lithium Sulfur Batteries-Ten Critical Questions.

TL;DR: A critical overview over lithium-sulfur batteries based on recent research findings is provided and critically evaluates current research with respect to them.
Journal ArticleDOI

Carbon nanomaterials for advanced lithium sulfur batteries

TL;DR: In this article, the state-of-the-art progress in designing and fabricating nanocarbon for advanced lithium sulfur batteries with particular focus on the correlations among porosity, electrical conductivity and surface chemistry as some of the most critical factors.
References
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Book

Chemistry of the elements

TL;DR: In this article, the origins of the elements, isotopes and atomic weights Chemical periodicity and the periodic table were discussed, including the following elements: Hydrogen Lithium, sodium, potassium, rubidium, caesium and francium Beryllium, magnesium, calcium, strontium, barium and radium Boron Aluminium, gallium, indium and thallium Carbon Silicon Germanium, tin and lead Nitrogen Phosphorus Arsenic, antimony and bismuth Oxygen Sulfur Selenium, tellurium
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A highly ordered nanostructured carbon–sulphur cathode for lithium–sulphur batteries

TL;DR: In this paper, the authors report the feasibility to approach such capacities by creating highly ordered interwoven composites, where conductive mesoporous carbon framework precisely constrains sulphur nanofiller growth within its channels and generates essential electrical contact to the insulating sulphur.
Journal ArticleDOI

Graphene-Wrapped Sulfur Particles as a Rechargeable Lithium–Sulfur Battery Cathode Material with High Capacity and Cycling Stability

TL;DR: In this article, the synthesis of a graphene-sulfur composite material by wrapping poly(ethylene glycol) (PEG) coated submicrometer sulfur particles with mildly oxidized graphene oxide sheets decorated by carbon black nanoparticles was reported.
Journal ArticleDOI

Porous Hollow Carbon@Sulfur Composites for High‐Power Lithium–Sulfur Batteries

TL;DR: C @ S nanocomposites based on mesoporous hollow carbon capsules were prepared by a template approach as mentioned in this paper, and their excellent properties as a cathode material in a lithium secondary battery of S-sequestration of elemental sulfur in the carbon capsules, a restricted polysulfide shuttling and an improved electron transport on sulfur are attributed.
Journal ArticleDOI

A review on electrolyte additives for lithium-ion batteries

TL;DR: In this article, a review of electrolyte additives used in Li-ion batteries is presented, which can be classified into five categories: solid electrolyte interface (SEI) forming improver, cathode protection agent, LiPF 6 salt stabilizer, safety protection agent and Li deposition improver.
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