Universal chemomechanical design rules for solid-ion conductors to prevent dendrite formation in lithium metal batteries

被引:135
作者
Fu, Chengyin [1 ]
Venturi, Victor [2 ]
Kim, Jinsoo [1 ,5 ]
Ahmad, Zeeshan [2 ]
Ells, Andrew W. [1 ]
Viswanathan, Venkatasubramanian [2 ,3 ]
Helms, Brett A. [1 ,4 ]
机构
[1] Lawrence Berkeley Natl Lab, Mol Foundry, Berkeley, CA USA
[2] Carnegie Mellon Univ, Dept Mech Engn, Pittsburgh, PA 15213 USA
[3] Carnegie Mellon Univ, Dept Mat Sci & Engn, Pittsburgh, PA 15213 USA
[4] Lawrence Berkeley Natl Lab, Div Mat Sci, Berkeley, CA 94720 USA
[5] KIER, Ulsan Adv Energy Technol R&D Ctr, Ulsan, South Korea
基金
美国安德鲁·梅隆基金会;
关键词
HIGH-ENERGY; POLYMER ELECTROLYTES; LI-ION; LIQUID; GROWTH; ELECTRODEPOSITION; PROPAGATION; DEPOSITION; CARBONATE; TRANSPORT;
D O I
10.1038/s41563-020-0655-2
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Dendrite formation during electrodeposition while charging lithium metal batteries compromises their safety. Although high-shear-modulus (Gs) solid-ion conductors (SICs) have been prioritized to resolve the pressure-driven instabilities that lead to dendrite propagation and cell shorting, it is unclear whether these or alternatives are needed to guide uniform lithium electrodeposition, which is intrinsically density-driven. Here, we show that SICs can be designed within a universal chemomechanical paradigm to access either pressure-driven dendrite-blocking or density-driven dendrite-suppressing properties, but not both. This dichotomy reflects the competing influence of the SIC's mechanical properties and the partial molar volume of Li+ (VLithorn I) relative to those of the lithium anode (GLi and VLi) on plating outcomes. Within this paradigm, we explore SICs in a previously unrecognized dendrite-suppressing regime that are concomitantly `soft', as is typical of polymer electrolytes, but feature an atypically low VLithorn I that is more reminiscent of `hard' ceramics. Li plating (1 mA cm-2; T = 20 degrees C) mediated by these SICs is uniform, as revealed using synchrotron hard X-ray microtomography. As a result, cell cycle life is extended, even when assembled with thin Li anodes (30 mu m) and either high-voltage NMC-622 cathodes (1.44 mAh cm-2) or high-capacity sulfur cathodes (3.02 mAh cm-2).
引用
收藏
页码:758 / +
页数:13
相关论文
共 50 条
  • [1] Stability of Electrodeposition at Solid-Solid Interfaces and Implications for Metal Anodes
    Ahmad, Zeeshan
    Viswanathan, Venkatasubramanian
    [J]. PHYSICAL REVIEW LETTERS, 2017, 119 (05)
  • [2] Status and challenges in enabling the lithium metal electrode for high-energy and low-cost rechargeable batteries
    Albertus, Paul
    Babinec, Susan
    Litzelman, Scott
    Newman, Aron
    [J]. NATURE ENERGY, 2018, 3 (01): : 16 - 21
  • [3] On the use of vinylene carbonate (VC) electrolyte solutions for Li-ion as an additive to batteries
    Aurbach, D
    Gamolsky, K
    Markovsky, B
    Gofer, Y
    Schmidt, M
    Heider, U
    [J]. ELECTROCHIMICA ACTA, 2002, 47 (09) : 1423 - 1439
  • [4] Bader R. F. W., 1994, Atoms in Molecules: A Quantum Theory
  • [5] PROPERTIES OF ATOMS IN MOLECULES - ATOMIC VOLUMES
    BADER, RFW
    CARROLL, MT
    CHEESEMAN, JR
    CHANG, C
    [J]. JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1987, 109 (26) : 7968 - 7979
  • [6] Lithium dendrite growth mechanisms in polymer electrolytes and prevention strategies
    Barai, Pallab
    Higa, Kenneth
    Srinivasan, Venkat
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2017, 19 (31) : 20493 - 20505
  • [7] Berne B. J., 1998, CLASSICAL QUANTUM DY
  • [8] PROJECTOR AUGMENTED-WAVE METHOD
    BLOCHL, PE
    [J]. PHYSICAL REVIEW B, 1994, 50 (24): : 17953 - 17979
  • [9] Bouchet R, 2013, NAT MATER, V12, P452, DOI [10.1038/NMAT3602, 10.1038/nmat3602]
  • [10] CONDUCTIVITY AND TRANSFERENCE NUMBER MEASUREMENTS ON POLYMER ELECTROLYTES
    BRUCE, PG
    EVANS, J
    VINCENT, CA
    [J]. SOLID STATE IONICS, 1988, 28 : 918 - 922