Interface Stability in Solid-State Batteries

被引:1279
作者
Richards, William D. [1 ]
Miara, Lincoln J. [2 ]
Wang, Yan [1 ]
Kim, Jae Chul [1 ]
Ceder, Gerbrand [1 ,3 ,4 ]
机构
[1] MIT, Dept Mat Sci & Engn, Cambridge, MA 02139 USA
[2] Samsung Adv Inst Technol USA, Cambridge, MA 02142 USA
[3] Univ Calif Berkeley, Dept Mat Sci & Engn, Berkeley, CA 94720 USA
[4] Univ Calif Berkeley, Lawrence Berkeley Natl Lab, Div Mat Sci, Berkeley, CA 94720 USA
基金
美国国家科学基金会;
关键词
IONIC-CONDUCTIVITY; PHASE-TRANSITION; SPINEL STRUCTURE; LITHIUM BATTERY; ELECTROLYTES; CONDUCTORS; OXIDE; DYNAMICS; CATHODES; MG;
D O I
10.1021/acs.chemmater.5b04082
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
Development of high conductivity solid-state electrolytes for lithium ion batteries has proceeded rapidly in recent years, but incorporating these new materials into high-performing batteries has proven difficult. Interfacial resistance is now the limiting factor in many systems, but the exact mechanisms of this resistance have not been fully explained in part because experimental evaluation of the interface can be very difficult. In this work, we develop a computational methodology to examine the thermodynamics of formation of resistive interfacial phases. The predicted interfacial phase formation is well correlated with experimental interfacial observations and battery performance. We calculate that thiophosphate electrolytes have especially high reactivity with high voltage cathodes and a narrow electrochemical stability window. We also find that a number of known electrolytes are not inherently stable but react in situ with the electrode to form passivating but ionically conducting barrier layers. As a reference for experimentalists, we tabulate the stability and expected decomposition products for a wide range of electrolyte, coating, and electrode materials including a number of high-performing combinations that have not yet been attempted experimentally.
引用
收藏
页码:266 / 273
页数:8
相关论文
共 59 条
[1]   Effect of substitution (Ta, Al, Ga) on the conductivity of Li7La3Zr2O12 [J].
Allen, J. L. ;
Wolfenstine, J. ;
Rangasamy, E. ;
Sakamoto, J. .
JOURNAL OF POWER SOURCES, 2012, 206 :315-319
[2]   BAND THEORY AND MOTT INSULATORS - HUBBARD-U INSTEAD OF STONER-I [J].
ANISIMOV, VI ;
ZAANEN, J ;
ANDERSEN, OK .
PHYSICAL REVIEW B, 1991, 44 (03) :943-954
[3]   IONIC-CONDUCTIVITY OF SOLID ELECTROLYTES BASED ON LITHIUM TITANIUM PHOSPHATE [J].
AONO, H ;
SUGIMOTO, E ;
SADAOKA, Y ;
IMANAKA, N ;
ADACHI, G .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1990, 137 (04) :1023-1027
[4]   New developments in the Inorganic Crystal Structure Database (ICSD): accessibility in support of materials research and design [J].
Belsky, A ;
Hellenbrandt, M ;
Karen, VL ;
Luksch, P .
ACTA CRYSTALLOGRAPHICA SECTION B-STRUCTURAL SCIENCE, 2002, 58 :364-369
[5]   PROJECTOR AUGMENTED-WAVE METHOD [J].
BLOCHL, PE .
PHYSICAL REVIEW B, 1994, 50 (24) :17953-17979
[6]   IONIC-CONDUCTIVITY IN LITHIUM AND LITHIUM-SODIUM BETA ALUMINA [J].
BRIANT, JL ;
FARRINGTON, GC .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1981, 128 (09) :1830-1834
[7]   Li10SnP2S12: An Affordable Lithium Superionic Conductor [J].
Bron, Philipp ;
Johansson, Sebastian ;
Zick, Klaus ;
auf der Guenne, Joern Schmedt ;
Dehnen, Stefanie ;
Roling, Bernhard .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2013, 135 (42) :15694-15697
[8]  
Chase Jr M.W., 1998, J PHYS CHEM REF DATA
[9]   STRUCTURE, IONIC MOTION AND CONDUCTIVITY IN SOME SOLID-SOLUTIONS OF THE LICL-MCL2 SYSTEMS (M = MG, V, MN) [J].
CROS, C ;
HANEBALI, L ;
LATIE, L ;
VILLENEUVE, G ;
WANG, G .
SOLID STATE IONICS, 1983, 9-10 (DEC) :139-147
[10]   Electron-energy-loss spectra and the structural stability of nickel oxide: An LSDA+U study [J].
Dudarev, SL ;
Botton, GA ;
Savrasov, SY ;
Humphreys, CJ ;
Sutton, AP .
PHYSICAL REVIEW B, 1998, 57 (03) :1505-1509