Open Access
Directing the Lithium–Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries
Chang Wook Lee
1, 2
,
Quan Pang
1, 3
,
Seungbum Ha
1, 4
,
Lei Cheng
1, 5
,
Sang-Don Han
1, 4
,
Kevin Zavadil
1, 6
,
Kevin G Gallagher
1, 4
,
Linda F. Nazar
1, 3
,
1
Joint Center for Energy Storage Research, Lemont, Illinois 60439, United States
|
5
Publication type: Journal Article
Publication date: 2017-05-25
scimago Q1
wos Q1
SJR: 3.286
CiteScore: 19.3
Impact factor: 10.4
ISSN: 23747943, 23747951
PubMed ID:
28691072
General Chemistry
General Chemical Engineering
Abstract
The lithium-sulfur battery has long been seen as a potential next generation battery chemistry for electric vehicles owing to the high theoretical specific energy and low cost of sulfur. However, even state-of-the-art lithium-sulfur batteries suffer from short lifetimes due to the migration of highly soluble polysulfide intermediates and exhibit less than desired energy density due to the required excess electrolyte. The use of sparingly solvating electrolytes in lithium-sulfur batteries is a promising approach to decouple electrolyte quantity from reaction mechanism, thus creating a pathway toward high energy density that deviates from the current catholyte approach. Herein, we demonstrate that sparingly solvating electrolytes based on compact, polar molecules with a 2:1 ratio of a functional group to lithium salt can fundamentally redirect the lithium-sulfur reaction pathway by inhibiting the traditional mechanism that is based on fully solvated intermediates. In contrast to the standard catholyte sulfur electrochemistry, sparingly solvating electrolytes promote intermediate- and short-chain polysulfide formation during the first third of discharge, before disproportionation results in crystalline lithium sulfide and a restricted fraction of soluble polysulfides which are further reduced during the remaining discharge. Moreover, operation at intermediate temperatures ca. 50 °C allows for minimal overpotentials and high utilization of sulfur at practical rates. This discovery opens the door to a new wave of scientific inquiry based on modifying the electrolyte local structure to tune and control the reaction pathway of many precipitation-dissolution chemistries, lithium-sulfur and beyond.
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194
Total citations:
194
Citations from 2024:
40
(20.62%)
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GOST
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Lee C. W. et al. Directing the Lithium–Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries // ACS Central Science. 2017. Vol. 3. No. 6. pp. 605-613.
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Lee C. W., Pang Q., Ha S., Cheng L., Han S., Zavadil K., Gallagher K. G., Nazar L. F., Balasubramanian M. Directing the Lithium–Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries // ACS Central Science. 2017. Vol. 3. No. 6. pp. 605-613.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1021/acscentsci.7b00123
UR - https://doi.org/10.1021/acscentsci.7b00123
TI - Directing the Lithium–Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries
T2 - ACS Central Science
AU - Lee, Chang Wook
AU - Pang, Quan
AU - Ha, Seungbum
AU - Cheng, Lei
AU - Han, Sang-Don
AU - Zavadil, Kevin
AU - Gallagher, Kevin G
AU - Nazar, Linda F.
AU - Balasubramanian, Mahalingam
PY - 2017
DA - 2017/05/25
PB - American Chemical Society (ACS)
SP - 605-613
IS - 6
VL - 3
PMID - 28691072
SN - 2374-7943
SN - 2374-7951
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2017_Lee,
author = {Chang Wook Lee and Quan Pang and Seungbum Ha and Lei Cheng and Sang-Don Han and Kevin Zavadil and Kevin G Gallagher and Linda F. Nazar and Mahalingam Balasubramanian},
title = {Directing the Lithium–Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries},
journal = {ACS Central Science},
year = {2017},
volume = {3},
publisher = {American Chemical Society (ACS)},
month = {may},
url = {https://doi.org/10.1021/acscentsci.7b00123},
number = {6},
pages = {605--613},
doi = {10.1021/acscentsci.7b00123}
}
Cite this
MLA
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Lee, Chang Wook, et al. “Directing the Lithium–Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries.” ACS Central Science, vol. 3, no. 6, May. 2017, pp. 605-613. https://doi.org/10.1021/acscentsci.7b00123.
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