Solving The Capacitive Paradox of 2D MXene using Electrochemical Quartz-Crystal Admittance and In Situ Electronic Conductance Measurements

被引:309
作者
Levi, Mikhael D. [1 ]
Lukatskaya, Maria R. [2 ,3 ]
Sigalov, Sergey [1 ]
Beidaghi, Majid [2 ,3 ]
Shpigel, Netanel [1 ]
Daikhin, Leonid [1 ,4 ]
Aurbach, Doron [1 ]
Barsoum, Michel W. [2 ,3 ]
Gogotsi, Yury [2 ,3 ]
机构
[1] Bar Ilan Univ, Dept Chem, IL-52900 Ramat Gan, Israel
[2] Drexel Univ, Dept Mat Sci & Engn, Philadelphia, PA 19104 USA
[3] Drexel Univ, AJ Drexel Nanomat Inst, Philadelphia, PA 19104 USA
[4] Tel Aviv Univ, Raymond & Beverly Sackler Fac Exact Sci, Sch Chem, IL-69978 Tel Aviv, Israel
基金
以色列科学基金会;
关键词
ANODE MATERIALS; INTERCALATION; MICROBALANCE; INSERTION; STORAGE; CARBON; EQCM;
D O I
10.1002/aenm.201400815
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
Fast ion adsorption processes in supercapacitors enable quick storage/delivery of significant amounts of energy, while ion intercalation in battery materials leads to even larger amounts of energy stored, but at substantially lower rates due to diffusional limitations. Intercalation of ions into the recently discovered 2D Ti3C2Tx (MXene) occurs with a very high rate and leads to high capacitance, posing a paradox. Herein, by characterizing the mechanical deformations of MXene electrode materials at various states-of-charge with a variety of cations (Li, Na, K, Cs, Mg, Ca, Ba, and three tetra-alkylammonium cations) during cycling by electrochemical quartz-crystal admittance (EQCA, quartz-crystal microbalance with dissipation monitoring) combined with in situ electronic conductance and electrochemical impedance, light is shone on this paradox. Based on this work, it appears that the capacitive paradox stems from cationic insertion, accompanied by significant deformation of the MXene particles, that occurs so rapidly so as to resemble 2D ion adsorption at solid-liquid interfaces. The latter is greatly facilitated by the presence of water molecules between the MXene sheets.
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页数:11
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共 35 条
  • [1] Variation of the MnO2 birnessite structure upon charge/discharge in an electrochemical supercapacitor electrode in aqueous Na2SO4 electrolyte
    Athouel, Laurence
    Moser, Francois
    Dugas, Romain
    Crosnier, Olivier
    Belanger, Daniel
    Brousse, Thierry
    [J]. JOURNAL OF PHYSICAL CHEMISTRY C, 2008, 112 (18) : 7270 - 7277
  • [2] Augustyn V, 2013, NAT MATER, V12, P518, DOI [10.1038/NMAT3601, 10.1038/nmat3601]
  • [3] Barsoukov E, 2005, IMPEDANCE SPECTROSCOPY: THEORY, EXPERIMENT, AND APPLICATIONS, 2ND EDITION, pXII
  • [4] Barsoum MW, 2013, MAX PHASES: PROPERTIES OF MACHINABLE TERNARY CARBIDES AND NITRIDES, P1, DOI 10.1002/9783527654581
  • [5] Influence of roughness on the admittance of the quartz crystal microbalance immersed in liquids
    Daikhin, L
    Gileadi, E
    Katz, G
    Tsionsky, V
    Urbakh, M
    Zagidulin, D
    [J]. ANALYTICAL CHEMISTRY, 2002, 74 (03) : 554 - 561
  • [6] Quartz Crystal Impedance Response of Nonhomogenous Composite Electrodes in Contact with Liquids
    Daikhin, Leonid
    Sigalov, Sergey
    Levi, Mikhael D.
    Salitra, Gregory
    Aurbach, Doron
    [J]. ANALYTICAL CHEMISTRY, 2011, 83 (24) : 9614 - 9621
  • [7] In Situ Electrochemical Dilatometry of Onion-Like Carbon and Carbon Black
    Hantel, M. M.
    Presser, V.
    McDonough, J. K.
    Feng, G.
    Cummings, P. T.
    Gogotsi, Y.
    Koetz, R.
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2012, 159 (11) : A1897 - A1903
  • [8] The EQCM: electrogravimetry with a light touch
    Hillman, A. Robert
    [J]. JOURNAL OF SOLID STATE ELECTROCHEMISTRY, 2011, 15 (7-8) : 1647 - 1660
  • [9] Inzelt G, 2010, ELECTROANALYTICAL METHODS: GUIDE TO EXPERIMENTS AND APPLICATIONS, SECOND EDITION, P257, DOI 10.1007/978-3-642-02915-8_13
  • [10] Viscoelastic, mechanical, and dielectric measurements on complex samples with the quartz crystal microbalance
    Johannsmann, Diethelm
    [J]. PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2008, 10 (31) : 4516 - 4534