Literature DB >> 27998132

Effect of Hydrofluoroether Cosolvent Addition on Li Solvation in Acetonitrile-Based Solvate Electrolytes and Its Influence on S Reduction in a Li-S Battery.

Kimberly A See1,2, Heng-Liang Wu1,2, Kah Chun Lau1,3, Minjeong Shin1,2, Lei Cheng1, Mahalingam Balasubramanian1, Kevin G Gallagher1, Larry A Curtiss1, Andrew A Gewirth1,2.   

Abstract

Li-S batteries are a promising next-generation battery technology. Due to the formation of soluble polysulfides during cell operation, the electrolyte composition of the cell plays an active role in directing the formation and speciation of the soluble lithium polysulfides. Recently, new classes of electrolytes termed "solvates" that contain stoichiometric quantities of salt and solvent and form a liquid at room temperature have been explored due to their sparingly solvating properties with respect to polysulfides. The viscosity of the solvate electrolytes is understandably high limiting their viability; however, hydrofluoroether cosolvents, thought to be inert to the solvate structure itself, can be introduced to reduce viscosity and enhance diffusion. Nazar and co-workers previously reported that addition of 1,1,2,2-tetrafluoroethyl 2,2,3,3-tetrafluoropropyl ether (TTE) to the LiTFSI in acetonitrile solvate, (MeCN)2-LiTFSI, results in enhanced capacity retention compared to the neat solvate. Here, we evaluate the effect of TTE addition on both the electrochemical behavior of the Li-S cell and the solvation structure of the (MeCN)2-LiTFSI electrolyte. Contrary to previous suggestions, Raman and NMR spectroscopy coupled with ab initio molecular dynamics simulations show that TTE coordinates to Li+ at the expense of MeCN coordination, thereby producing a higher content of free MeCN, a good polysulfide solvent, in the electrolyte. The electrolytes containing a higher free MeCN content facilitate faster polysulfide formation kinetics during the electrochemical reduction of S in a Li-S cell likely as a result of the solvation power of the free MeCN.

Entities:  

Keywords:  hydrofluoroether cosolvent; in situ Raman spectroscopy; lithium−sulfur battery; solvate electrolyte; sulfur reduction kinetics

Year:  2016        PMID: 27998132     DOI: 10.1021/acsami.6b11358

Source DB:  PubMed          Journal:  ACS Appl Mater Interfaces        ISSN: 1944-8244            Impact factor:   9.229


  3 in total

1.  Directing the Lithium-Sulfur Reaction Pathway via Sparingly Solvating Electrolytes for High Energy Density Batteries.

Authors:  Chang-Wook Lee; Quan Pang; Seungbum Ha; Lei Cheng; Sang-Don Han; Kevin R Zavadil; Kevin G Gallagher; Linda F Nazar; Mahalingam Balasubramanian
Journal:  ACS Cent Sci       Date:  2017-05-25       Impact factor: 14.553

2.  Hitherto Unknown Solvent and Anion Pairs in Solvation Structures Reveal New Insights into High-Performance Lithium-Ion Batteries.

Authors:  Wandi Wahyudi; Xianrong Guo; Viko Ladelta; Leonidas Tsetseris; Mohamad I Nugraha; Yuanbao Lin; Vincent Tung; Nikos Hadjichristidis; Qian Li; Kang Xu; Jun Ming; Thomas D Anthopoulos
Journal:  Adv Sci (Weinh)       Date:  2022-08-17       Impact factor: 17.521

3.  Reversible redox chemistry in azobenzene-based organic molecules for high-capacity and long-life nonaqueous redox flow batteries.

Authors:  Leyuan Zhang; Yumin Qian; Ruozhu Feng; Yu Ding; Xihong Zu; Changkun Zhang; Xuelin Guo; Wei Wang; Guihua Yu
Journal:  Nat Commun       Date:  2020-07-31       Impact factor: 14.919

  3 in total

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