Kinetics Tuning the Electrochemistry of Lithium Dendrites Formation in Lithium Batteries through Electrolytes
Author(s) -
Ran Tao,
Xuanxuan Bi,
Li Shu,
Ying Yao,
Feng Wu,
Qian Wang,
Cunzhong Zhang,
Jun Lü
Publication year - 2017
Publication title -
acs applied materials and interfaces
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.535
H-Index - 228
eISSN - 1944-8252
pISSN - 1944-8244
DOI - 10.1021/acsami.6b13859
Subject(s) - lithium (medication) , electrolyte , propylene carbonate , exchange current density , electrochemistry , materials science , dendrite (mathematics) , inorganic chemistry , diffusion , electrochemical kinetics , kinetics , electrode , chemical engineering , chemistry , thermodynamics , medicine , tafel equation , physics , geometry , mathematics , quantum mechanics , engineering , endocrinology
Lithium batteries are one of the most advance energy storage devices in the world and have attracted extensive research interests. However, lithium dendrite growth was a safety issue which handicapped the application of pure lithium metal in the negative electrode. In this investigation, two solvents, propylene carbonate (PC) and 2-methyl-tetrahydrofuran (2MeTHF), and four Li + salts, LiPF 6 , LiAsF 6 , LiBF 4 and LiClO 4 were investigated in terms of their effects on the kinetics of lithium dendrite formation in eight electrolyte solutions. The kinetic parameters of charge transfer step (exchange current density, j 0 , transfer coefficient, α) of Li + /Li redox system, the mass transfer parameters of Li + (transfer number of Li + , Li+ , diffusion coefficient of Li + , D Li+ ), and the conductivity (κ) of each electrolyte were studied separately. The results demonstrate that the solvents play a critical role in the measured j 0 , Li+ , D Li+ , and κ of the electrolyte, while the choice of Li + salts only slightly affect the measured parameters. The understanding of the kinetics will gain insight into the mechanism of lithium dendrite formation and provide guidelines to the future application of lithium metal.
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