Oxidative-Stability Enhancement and Charge Transport Mechanism in Glyme-Lithium Salt Equimolar Complexes

被引:708
作者
Yoshida, Kazuki [1 ]
Nakamura, Megumi [1 ]
Kazue, Yuichi [1 ]
Tachikawa, Naold [1 ]
Tsuzuki, Seiji [2 ]
Seki, Shiro [3 ]
Dokko, Kaoru [1 ]
Watanabe, Masayoshi [1 ]
机构
[1] Yokohama Natl Univ, Dept Chem & Biotechnol, Hodogaya Ku, Yokohama, Kanagawa 2408501, Japan
[2] Natl Inst Adv Ind Sci & Technol, Tsukuba, Ibaraki 3058568, Japan
[3] Cent Res Inst Elect Power Ind CRIEPI, Mat Sci Res Lab, Tokyo 2018511, Japan
基金
日本科学技术振兴机构;
关键词
TEMPERATURE IONIC LIQUIDS; AMORPHOUS CONCENTRATED LIQUID; CATION SOLVATE STRUCTURES; PHYSICOCHEMICAL PROPERTIES; POLYMER ELECTROLYTES; SECONDARY BATTERIES; NONAQUEOUS ELECTROLYTES; ELECTROCHEMICAL PROPERTIES; CATHODE MATERIALS; LI/LICOO2; CELL;
D O I
10.1021/ja203983r
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The oxidative stability of molecules is enhanced by the complex formation with alkali metal cations. Clear liquid can be obtained by simply mixing glyme (triglyme or tetraglyme) with lithium bis (trifluoromethylsulfonyl)-amide (Li[TFSA]) in a molar ration of 1:1. The equimolar complex [Li(triglyme or tetraglyme)(1)][TFSA] maintains a stable liquid state over a wide temperature range and can be regarded as a room-temperature ionic liquid consisting of a [Li(glyme)(1)](+) complex cation and a [TFSA](-) anion, exhibiting high self-dissociativity (ionicity) at room temperature. The electrochemical oxidation of [Li(glyme)(1)][TFSA] takes place at the electrode potential of similar to 5 v vs Li/Li+, while the oxidation of solutions containing excess glyme molecules ([Li(glyme)(x)]-[TFSA], x > 1) occurs at around 4 v vs Li/Li+. This enhancement of oxidative stability is due to the donation of lone pairs of ether oxygen atoms to the Li+ cation, resulting in the highest occupied molecular orbital (HOMO) energy level lowering of a glyme molecule, which is confirmed by ab initio molecular orbital calculations. The solvation state of a Li+ cation and ion conduction mechanism in the [Li(glyme)(x)][TFSA] solutions is elucidated by means of nuclear magnetic resonance (NMR) and electrochemical methods. The experimental results strongly suggest that Li+ cation conduction in the equimolar complex takes place by the migration of [Li(glyme)(1)](+) cations, whereas the ligands exchange mechanism is overlapped when interfacial electrochemical reactions of [Li(glyme)(1)](+) cations occur. The ligand exchange conduction mode is typically seen in a lithium battery with a configuration of [Li anode vertical bar[Li(glyme)(1)][TFSA]vertical bar LiCoO2 cathode] when the discharge reaction of a LiCoO2 cathode, that is, desolvation of [Li(glyme)(1)](+) and insertion of the resultant Li+ into the cathode, occurs at the electrode-electrolyte interface. The battery can be operated for more than 200 charge-discharge cycles in the cell voltage of 3.0-4.2 V, regardless of the use of ether-based electrolyte, because the ligand exchange rate is much faster than the electrode reaction rate.
引用
收藏
页码:13121 / 13129
页数:9
相关论文
共 68 条
[1]   Solvated Li-ion transfer at interface between graphite and electrolyte [J].
Abe, T ;
Fukuda, H ;
Iriyama, Y ;
Ogumi, Z .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2004, 151 (08) :A1120-A1123
[2]   Highly conductive PEO-like polymer electrolytes [J].
Abraham, KM ;
Jiang, Z ;
Carroll, B .
CHEMISTRY OF MATERIALS, 1997, 9 (09) :1978-1988
[3]   NUCLEAR MAGNETIC RESONANCE METHODS FOR DETERMINING CHEMICAL-EXCHANGE RATES [J].
ALLERHAN.A ;
GUTOWSKY, HS ;
JONAS, J ;
MEINZER, RA .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1966, 88 (14) :3185-&
[4]   Novel silane compounds as electrolyte solvents for Li-ion batteries [J].
Amine, K ;
Wang, QZ ;
Vissers, DR ;
Zhang, ZC ;
Rossi, NAA ;
West, R .
ELECTROCHEMISTRY COMMUNICATIONS, 2006, 8 (03) :429-433
[5]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[6]  
Armand M. B., 1979, Fast Ion Transport in Solids. Electrodes and Electrolytes, P131
[7]   On the application of ionic liquids for rechargeable Li batteries: High voltage systems [J].
Borgel, V. ;
Markevich, E. ;
Aurbach, D. ;
Semrau, G. ;
Schmidt, M. .
JOURNAL OF POWER SOURCES, 2009, 189 (01) :331-336
[8]   Kinetic investigation of the solvation of lithium salts in siloxanes [J].
Chen, Zonghai ;
Wang, H. H. ;
Vissers, D. R. ;
Zhang, Lingzhi ;
West, R. ;
Lyons, L. J. ;
Amine, K. .
JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (06) :2210-2214
[9]   Increasing the conductivity of crystalline polymer electrolytes [J].
Christie, AM ;
Lilley, SJ ;
Staunton, E ;
Andreev, YG ;
Bruce, PG .
NATURE, 2005, 433 (7021) :50-53
[10]   LiTFSI-BEPyTFSI as an improved ionic liquid electrolyte for rechargeable lithium batteries [J].
Fernicola, A. ;
Croce, F. ;
Scrosati, B. ;
Watanabe, T. ;
Ohno, H. .
JOURNAL OF POWER SOURCES, 2007, 174 (01) :342-348