Computational Exploration of the Li-ElectrodelElectrolyte Interface in the Presence of a Nanometer Thick Solid-Electrolyte Interphase Layer

被引:134
作者
Li, Yunsong [1 ]
Leung, Kevin [2 ]
Qi, Yue [1 ]
机构
[1] Michigan State Univ, Dept Chem Engn & Mat Sci, E Lansing, MI 48824 USA
[2] Sandia Natl Labs, Albuquerque, NM 87185 USA
基金
美国国家科学基金会;
关键词
LITHIUM-ION BATTERIES; RECHARGEABLE BATTERIES; INTERCALATION ANODES; MOLECULAR-DYNAMICS; SURFACE-CHEMISTRY; COMPLEX MATERIALS; TIGHT-BINDING; GRAPHITE; SIMULATIONS; MECHANISMS;
D O I
10.1021/acs.accounts.6b00363
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
A nanometer thick passivation layer will spontaneously form on Li-metal in battery applications due to electrolyte reduction reactions. This passivation layer in rechargeable batteries must have "selective" transport properties: blocking electrons from attacking the electrolytes, while allowing Li+ ion to pass through so the electrochemical reactions can continue. The classical description of the electrochemical reaction, Li4+ e -> Li, occurring at the Limetallelectrolyte - interface is now complicated by the passivation layer and will reply on the coupling of electronic and ionic degrees of freedom in the layer. This passivation layer is called "solid electrolyte interphase (SET)" and is considered as "the most important but the least understood in rechargeable Li ion batteries," partly due to the lack of understanding of its structure property relationship. Predictive modeling, starting from the ab initio level, becomes an important tool to understand the nanoscale processes and materials properties governing the interfacial charge transfer reaction at the Li-metalISEIlelectrolyte interface. Here, we demonstrate pristine Li-metal surfaces indeed dissolve in organic carbonate electrolytes without the SEI layer. Based on joint modeling and experimental results, we point out that the well-known two-layer structure of SEI also exhibits two different Le ion transport mechanisms. The SEI has a porous (organic) outer layer permeable to both Li+ and anions (dissolved in electrolyte), and a dense (inorganic) inner layer facilitate only Li+ transport. This two-layer/two-mechanism diffusion model suggests only the dense inorganic layer is effective at protecting Li-metal in electrolytes. This model suggests a strategy to deconvolute the structure property relationships of the SEI by analyzing an idealized SEI composed of major, components, such as Li2CO3, LiF, Li2O, and their mixtures. After sorting out the Li+ ion diffusion carriers and their diffusion pathways, we design methods to accelerate the Lir' ion conductivity by doping and by using heterogonous structure designs. We will predict the electron tunneling barriers and connect them with measurable first cycle irreversible capacity loss. Finally, we note that the SEI not only affects Li+ and e transport, but it can also impose a potential drop near the Li-metalISEI interface. Our challenge is to fully describe the electrochemical reactions at the Li-metalISEIlelectrolyte interface. This will be the subject of ongoing efforts.
引用
收藏
页码:2363 / 2370
页数:8
相关论文
共 47 条
  • [1] A short review of failure mechanisms of lithium metal and lithiated graphite anodes in liquid electrolyte solutions
    Aurbach, D
    Zinigrad, E
    Cohen, Y
    Teller, H
    [J]. SOLID STATE IONICS, 2002, 148 (3-4) : 405 - 416
  • [2] Recent studies on the correlation between surface chemistry, morphology, three-dimensional structures and performance of Li and Li-C intercalation anodes in several important electrolyte systems
    Aurbach, D
    Zaban, A
    Ein-Eli, Y
    Weissman, I
    Chusid, O
    Markovsky, B
    Levi, M
    Levi, E
    Schechter, A
    Granot, E
    [J]. JOURNAL OF POWER SOURCES, 1997, 68 (01) : 91 - 98
  • [3] THE CORRELATION BETWEEN THE SURFACE-CHEMISTRY AND THE PERFORMANCE OF LI-CARBON INTERCALATION ANODES FOR RECHARGEABLE ROCKING-CHAIR TYPE BATTERIES
    AURBACH, D
    EINELI, Y
    CHUSID, O
    CARMELI, Y
    BABAI, M
    YAMIN, H
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1994, 141 (03) : 603 - 611
  • [4] Balbuena P.B., 2004, Lithium-Ion Batteries: Solid-Electrolyte Interphase
  • [5] Theory of Chemical Kinetics and Charge Transfer based on Nonequilibrium Thermodynamics
    Bazant, Martin Z.
    [J]. ACCOUNTS OF CHEMICAL RESEARCH, 2013, 46 (05) : 1144 - 1160
  • [6] Molecular Dynamics Simulations and Experimental Study of Lithium Ion Transport in Dilithium Ethylene Dicarbonate
    Borodin, Oleg
    Zhuang, Guorong V.
    Ross, Philip N.
    Xu, Kang
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2013, 117 (15) : 7433 - 7444
  • [7] Bruce PG, 2012, NAT MATER, V11, P19, DOI [10.1038/nmat3191, 10.1038/NMAT3191]
  • [8] Micromorphological studies of lithium electrodes in alkyl carbonate solutions using in situ atomic force microscopy
    Cohen, YS
    Cohen, Y
    Aurbach, D
    [J]. JOURNAL OF PHYSICAL CHEMISTRY B, 2000, 104 (51) : 12282 - 12291
  • [9] Self-consistent-charge density-functional tight-binding method for simulations of complex materials properties
    Elstner, M
    Porezag, D
    Jungnickel, G
    Elsner, J
    Haugk, M
    Frauenheim, T
    Suhai, S
    Seifert, G
    [J]. PHYSICAL REVIEW B, 1998, 58 (11): : 7260 - 7268
  • [10] Atomistic simulations of complex materials:: ground-state and excited-state properties
    Frauenheim, T
    Seifert, G
    Elstner, M
    Niehaus, T
    Köhler, C
    Amkreutz, M
    Sternberg, M
    Hajnal, Z
    Di Carlo, A
    Suhai, S
    [J]. JOURNAL OF PHYSICS-CONDENSED MATTER, 2002, 14 (11) : 3015 - 3047