Volume 7 Issue 1
Feb.  2022
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Shuhui Sun. Multi-factor principle for electrolyte additive molecule design for facilitating the development of electrolyte chemistry. Green Energy&Environment, 2022, 7(1): 1-2. doi: 10.1016/j.gee.2021.02.005
Citation: Shuhui Sun. Multi-factor principle for electrolyte additive molecule design for facilitating the development of electrolyte chemistry. Green Energy&Environment, 2022, 7(1): 1-2. doi: 10.1016/j.gee.2021.02.005

Multi-factor principle for electrolyte additive molecule design for facilitating the development of electrolyte chemistry

doi: 10.1016/j.gee.2021.02.005
  • When I read the paper "Electrolytes enriched by potassium perfluorinated sulfonates for lithium metal batteries" from Prof. Jianmin Ma's group, which was published in Science Bulletin (doi.org/10.1016/j.scib.2020.09.018), I felt excited as presented a multi-factor principle for applying potassium perfluorinated sulfonates to suppress the dendrite growth and protect the cathode from the viewpoint of electrolyte additives. The effects of these additives are revealed through experimental results, molecular dynamics simulations and first-principle calculations. Specifically, it involves the influence of additives on Li+ solvation structure, solid electrolyte interphase (SEI), Li growth and nucleation. Following the guidance of the multi-factor principle, every part of the additive molecule should be utilized to regulate electrolytes. This multifactor principle for electrolyte additive molecule design (EAMD) offers a unique insight on understanding the electrochemical behavior of iontype electrolyte additives on both the Li metal anode and high-voltage cathode. In these regards, I would be delighted to write a highlight for this innovative work and, hopefully, it may raise more interest in the areas of electrolyte additives.

     

  • • The multi-factor principle for electrolyte additive molecule design. • Every part of the additive molecule should have a positive impact on electrolyte. • Potassium perfluorinated sulfonates can enhance electrolyte chemistry. • The electrolyte additive can improve electrolyte/electrode interphase. • The electrolyte additive can regulate the solvation sheath structure of Li+.
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  • [1]
    M. Li, J. Lu, Z. Chen, K. Amine, Adv. Mater. 30(2018) 1800561.
    [2]
    X.B. Cheng, R. Zhang, C.Z. Zhao, Q. Zhang, Chem. Rev. 117(2017) 10403-10473.
    [3]
    X.B. Cheng, R. Zhang, C.Z. Zhao, F. Wei, J.G. Zhang, Q. Zhang, Adv. Sci. 3(2016) 1500213.
    [4]
    J. Zheng, G. Ji, X. Fan, J. Chen, Q. Li, H. Wang, Y. Yang, K.C. DeMella, S.R. Raghavan, C. Wang, Adv. Energy Mater. 9(2019) 1803774.
    [5]
    L. Chen, J. Zhang, Q. Li, J. Vatamanu, X. Ji, T.P. Pollard, C. Cui, S. Hou, J. Chen, C. Yang, L. Ma, M.S. Ding, M. Garaga, S. Greenbaum, H.-S. Lee, O. Borodin, K. Xu, C. Wang, ACS Energy Lett. 5(2020) 968-974.
    [6]
    S. Lee, K. Park, B. Koo, C. Park, M. Jang, H. Lee, H. Lee, Adv. Funct. Mater. 30(2020) 2003132.
    [7]
    X.Q. Zhang, X. Chen, X.B. Cheng, B.Q. Li, X. Shen, C. Yan, J.Q. Huang, Q. Zhang, Angew. Chem. Int. Ed. 57(2018) 5301-5305.
    [8]
    A.M. Haregewoin, A.S. Wotango, B.-J. Hwang, Energy Environ. Sci. 9(2016) 1955-1988.
    [9]
    H. Wang, J. He, J. Liu, S. Qi, M. Wu, J. Wen, Y. Chen, Y. Feng, J. Ma, Adv. Funct. Mater. 31(2021) 2002578.
    [10]
    S. Qi, H. Wamg, J. He, J. Liu, C. Cui, M. Wu, F. Li, Y. Feng, J. Ma, Sci. Bull. 66(2021) 685-693.
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