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Prospects of Using the Laser-Induced Temperature Jump Techniques for Characterisation of Electrochemical Systems

期刊

CHEMELECTROCHEM
卷 9, 期 4, 页码 -

出版社

WILEY-V C H VERLAG GMBH
DOI: 10.1002/celc.202101175

关键词

potential of maximum entropy; laser-induced current; potential transient; electric double layer; electrolyte influence; metal-organic frameworks

资金

  1. Deutsche Forschungsgemeinschaft [EXC 2089/1 - 390776260]
  2. DFG research group 2982 under UNusual anODE (UNODE)
  3. China Scholarship Council
  4. Projekt DEAL
  5. DFG [BA 5795/5-1, BA 5795/6-1]

向作者/读者索取更多资源

Understanding processes, phenomena, and mechanisms at the electrode/electrolyte interface is crucial for optimizing electrochemical systems. The introduction of sub-microsecond laser pulses has simplified the investigation of the electrochemical interface, and the laser-induced current transient and laser-induced potential transient techniques have proven to be valuable tools.
Understanding the processes, phenomena, and mechanisms occurring at the electrode/electrolyte interface is a prerequisite and significant for optimizing electrochemical systems. To this end, the advent of sub-microsecond laser pulses has paved the way and eased the investigations of the electrochemical interface (e. g., electric double layer), which hitherto is difficult. The laser-induced current transient (LICT) and laser-induced potential transient (LIPT) techniques have proven to be valuable and unique tools for measuring key parameters of the electrified interface, such as the potential of maximum entropy (PME) and the potential of zero charge (PZC). Herein, we present a summary of studies performed in recent years using laser-induced temperature jump techniques. The relation between the PME/PZC and the electrocatalytic properties of various electrochemical interfaces are particularly highlighted. Special attention is given to its applications in investigating different systems and analyzing the influence of the electrolyte components, electrode composition and structure on the PME/PZC and various electrochemical processes. Moreover, possible applications of the LICT/LIPT techniques to investigate the interfacial properties of a myriad of materials, including surface-mounted metal-organic frameworks and metal oxides, are elaborated.

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