Impedance response of electrochemical interfaces: part II-chemisorption
Author(s) -
Jun Huang,
Chenkun Li
Publication year - 2021
Publication title -
journal of physics condensed matter
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.908
H-Index - 228
eISSN - 1361-648X
pISSN - 0953-8984
DOI - 10.1088/1361-648x/abef9d
Subject(s) - chemisorption , chemistry , electron transfer , nernst equation , electrical impedance , dielectric spectroscopy , electrochemistry , ion , adsorption , electrode , chemical physics , atomic physics , analytical chemistry (journal) , physics , quantum mechanics , organic chemistry , chromatography
Physical modeling helps to acquire fundamental insights from experimental data when electrochemical impedance spectroscopy is employed for mechanistic understandings of electrocatalytic reactions. Herein, we report an analytical model for chemisorption impedance with a consistent treatment of ion transport in the solution and electron transfer on the electrode surface. Our formulation avoids both a priori decoupling of double-layer charging and electron transfer reaction, and a strict separation of double-layer charging and ion transport. Ion transport in the entire solution region is described by the Poisson–Nernst–Planck theory and electron transfer kinetics on the electrode surface by the Frumkin–Butler–Volmer theory. Surface dipoles caused by partially charged chemisorbates are considered. The classical Frumkin–Melik–Gaikazyan model for chemisorption is retrieved as a limiting case. The obtained formula is validated using experimental data of hydrogen adsorption at Pt(111). Characteristic frequencies and asymptotic behaviors of chemisorption impedance are analyzed.
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