Toward Quantitative Electrochemical Measurements on the Nanoscale by Scanning Probe Microscopy: Environmental and Current Spreading Effects

被引:17
|
作者
Arruda, Thomas M. [1 ]
Kumar, Amit [1 ]
Jesse, Stephen [1 ]
Veith, Gabriel M. [2 ]
Tselev, Alexander [1 ]
Baddorf, Arthur P. [1 ]
Balke, Nina [1 ]
Kalinin, Sergei V. [1 ]
机构
[1] Oak Ridge Natl Lab, Ctr Nanophase Mat Sci, Oak Ridge, TN 37831 USA
[2] Oak Ridge Natl Lab, Mat Sci & Technol Div, Oak Ridge, TN 37831 USA
关键词
scanning probe microscopy; solid state electrolyte; counter electrode effects; Li ion battery; nanoscale electrochemistry; SILICON SURFACES; FORCE MICROSCOPY; ION; OXIDATION; FILMS;
D O I
10.1021/nn4034772
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
The application of electric bias across tip surface junctions in scanning probe microscopy can readily induce surface and bulk electrochemical processes that can be further detected though changes in surface topography, Faradaic or conductive currents, or electromechanical strain responses. However, the basic factors controlling tip-induced electrochemical processes, including the relationship between applied tip bias and the thermodynamics of local processes, remains largely unexplored. Using the model Li-ion reduction reaction on the surface in Li-ion conducting glass ceramic, we explore the factors controlling Li-metal formation and find surprisingly strong effects of atmosphere and back electrode composition on the process. We find that reaction processes are highly dependent on the nature of the counter electrode and environmental conditions. Using a nondepleting Li counter electrode, Li particles could grow significantly larger and faster than a depleting counter electrode. Significant Li ion depletion leads to the inability for further Li reduction. Time studies suggest that Li diffusion replenishes the vacant sites after similar to 12 h. These studies suggest the feasibility of SPM-based quantitative electrochemical studies under proper environmental controls, extending the concepts of ultramicroelectrodes to the single-digit nanometer scale.
引用
收藏
页码:8175 / 8182
页数:8
相关论文
共 50 条
  • [21] Nanoscale fretting wear study by scanning probe microscopy
    M. Varenberg
    I. Etsion
    G. Halperin
    Tribology Letters, 2005, 18 : 493 - 498
  • [22] Quantitative Feedback Referencing for Improved Kinetic Fitting of Scanning Electrochemical Microscopy Measurements
    Skaanvik, Sebastian Amland
    Stephens, Lisa Irene
    Gateman, Samantha Michelle
    Geissler, Matthias
    Mauzeroll, Janine
    ANALYTICAL CHEMISTRY, 2022, 94 (40) : 13852 - 13859
  • [23] Electrochemical cantilever sensors and scanning probe microscopy
    Thundat, T.
    Brown, Gilbert M.
    2007 IEEE SENSORS, VOLS 1-3, 2007, : 707 - 707
  • [24] Electrochemical applications of in situ scanning probe microscopy
    Gewirth, AA
    Niece, BK
    CHEMICAL REVIEWS, 1997, 97 (04) : 1129 - 1162
  • [25] Examination of electrochemical interfaces with scanning probe microscopy
    Green, John-Bruce D.
    Electrochemical Society Interface, 6 (01): : 60 - 61
  • [26] Scanning electrochemical probe microscopy: general discussion
    Actis, Paolo
    Baker, Lane A.
    Caniglia, Giada
    Ding, Zhifeng
    Ewing, Andrew G.
    Fu, Kaiyu X.
    Gaudin, Lachlan F.
    Gooding, J. Justin
    Hui, Jingshu
    Jiang, Dechen
    Kanoufi, Frederic
    Kasianowicz, John J.
    Kim, Moonjoo
    Kranz, Christine
    Kuttner, Christian
    Li, Yunchao
    Liu, Liang
    Lu, Si-Min
    Luo, Wenjun
    Mckelvey, Kim
    Mount, Andrew R.
    Ren, Hang
    Shao, Yuanhua
    Shen, Mei
    Takahashi, Yasufumi
    Tang, Juan
    Wang, Dengchao
    Wang, Liang
    Wang, Wei
    Wang, Yunong
    Xie, Ruo-Chen
    Xie, Yuelin
    Ying, Yi-Lun
    Zhang, Guohui
    Zhang, Lingjie
    Zhao, Ziwen
    Zhou, Yige
    FARADAY DISCUSSIONS, 2025, 257 (00) : 277 - 302
  • [27] Quantitative Scanning Probe Microscopy for Nanomechanical Forensics
    F. W. DelRio
    R. F. Cook
    Experimental Mechanics, 2017, 57 : 1045 - 1055
  • [28] Quantitative Scanning Probe Microscopy for Nanomechanical Forensics
    DelRio, F. W.
    Cook, R. F.
    EXPERIMENTAL MECHANICS, 2017, 57 (07) : 1045 - 1055
  • [29] Synthetic Data in Quantitative Scanning Probe Microscopy
    Necas, David
    Klapetek, Petr
    NANOMATERIALS, 2021, 11 (07)
  • [30] Growth of cationic lipid toward bilayer, lipid membrane by solution spreading: scanning probe microscopy study
    Wang, L
    Song, YH
    Han, XJ
    Zhang, BL
    Wang, EK
    CHEMISTRY AND PHYSICS OF LIPIDS, 2003, 123 (02) : 177 - 185