Computational and Experimental Study of Li-Doped Ionic Liquids at Electrified Interfaces

被引:27
|
作者
Haskins, Justin B. [1 ]
Wu, James J. [3 ]
Lawson, John W. [2 ]
机构
[1] NASA, Ames Res Ctr, AMA Inc, Thermal Mat Protect Branch, Moffett Field, CA 94035 USA
[2] NASA, Ames Res Ctr, Thermal Mat Protect Branch, Moffett Field, CA 94035 USA
[3] NASA, Glenn Res Ctr, Photovolta & Electrochem Syst Branch, Cleveland, OH 44135 USA
来源
JOURNAL OF PHYSICAL CHEMISTRY C | 2016年 / 120卷 / 22期
关键词
DOUBLE-LAYER STRUCTURE; FREQUENCY GENERATION SPECTROSCOPY; MOLECULAR-DYNAMICS SIMULATION; ELECTROCHEMICAL DOUBLE-LAYER; POLARIZABLE FORCE-FIELDS; DIFFERENTIAL CAPACITANCE; IMPEDANCE SPECTROSCOPY; ELECTRODE INTERFACE; CARBON NANOTUBE; AB-INITIO;
D O I
10.1021/acs.jpcc.6b02449
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
We evaluate the influence of Li-salt doping on the dynamics, capacitance, and structure of three ionic liquid electrolytes, [pyr14] [TFSI], [pyr13] [FSI], and [EMIM] [BF4], using molecular dynamics and polarizable force fields. In this respect, our focus is on the properties of the electric double layer (EDL) formed by the electrolytes at the electrode surface as a function of surface potential (Psi). The rates of EDL formation are found to be on the order of hundreds of picoseconds and only slightly influenced by the addition of Li salt. The EDLs of three electrolytes are shown to have different energy storage capacities, which we relate to the EDL formation free energy. The differential capacitance obtained from our computations exhibits asymmetry about the potential of zero charge and is consistent with the camel-like profiles noted from mean field theories and experiments on metallic electrodes. The introduction of Li salt reduces the noted asymmetry in the differential capacitance profile. Complementary experimental capacitance measurements have been made on our three electrolytes in their neat forms and with Li salt. The measurements, performed on glassy carbon electrodes, produce U-like profiles, and Li-salt doping is shown to strongly affect capacitance at high magnitudes of Psi. Differences in the theoretical and experimental shapes and magnitudes of capacitance are rationalized in terms of the electrode surface and pseudocapacitive effects. In both neat and Li-doped liquids, the details of the computational: capacitance profile are well described by Psi-induced changes in the density and moleculat orientation of ions in the molecular layer closest to the electrode. Our results suggest that the addition of Li+ induces disorder in the EDL, which originates from the strong binding of anions to Li+. An in-depth analysis of the distribution of Le in the EDL reveals that it does not readily enter the molecular layer at the electrode surface, preferring instead to be localized farther away from the surface in the second molecular layer. This behavior is validated through an analysis of the free energy of Li+ solvation as a function of distance from the electrode. Free energy wells are found to coincide with localized concentrations Li+, the depths of which increase with Psi and suggest a source of impedance for Li+ to reach the electrode. Finally, we make predictions of the specific energy at ideal graphite utilizing the computed capacitance and previously derived electrochemical windows of the liquids.
引用
收藏
页码:11993 / 12011
页数:19
相关论文
共 50 条
  • [1] Ionic Liquids at Electrified Interfaces
    Fedorov, Maxim V.
    Kornyshev, Alexei A.
    CHEMICAL REVIEWS, 2014, 114 (05) : 2978 - 3036
  • [2] Solvate Ionic Liquids at Electrified Interfaces
    Yu, Zhou
    Fang, Chao
    Huang, Jingsong
    Sumpter, Bobby G.
    Qiao, Rui
    ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (38) : 32151 - 32161
  • [3] A Classical Density Functional Study of Clustering in Ionic Liquids at Electrified Interfaces
    Ma, Ke
    Forsman, Jan
    Woodward, Clifford E.
    JOURNAL OF PHYSICAL CHEMISTRY C, 2017, 121 (03): : 1742 - 1751
  • [4] Water in Ionic Liquids at Electrified Interfaces: The Anatomy of Electrosorption
    Feng, Guang
    Jiang, Xikai
    Qiao, Rui
    Kornyshev, Alexei A.
    ACS NANO, 2014, 8 (11) : 11685 - 11694
  • [5] NMR study of ionic distribution in Li-doped BPO4
    Dodd, AJ
    van Eck, ERH
    Jak, MJG
    Kelder, EM
    Schoonman, J
    JOURNAL OF SOLID STATE CHEMISTRY, 2000, 153 (02) : 282 - 286
  • [6] Ionic liquids at electrified interfaces: From double layers to decomposition
    Haskins, Justin
    Yildirim, Handan
    Bauschlicher, Charles
    Lawson, John
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2018, 256
  • [7] Computational studies of aqueous and ionic liquids interfaces
    Dang, Liem X.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 241
  • [8] Computational studies of aqueous and ionic liquids interfaces
    Dang, Liem
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 245
  • [9] Computational studies of aqueous and ionic liquids interfaces
    Dang, Liem X.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2013, 246
  • [10] Three-Dimensional Molecular Mapping of Ionic Liquids at Electrified Interfaces
    Zhou, Shan
    Panse, Kaustubh S.
    Motevaselian, Mohammad Hossein
    Aluru, Narayana R.
    Zhang, Yingjie
    ACS NANO, 2020, 14 (12) : 17515 - 17523