Matthias M. May
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Verbundprojekt CDR: Negative Emissionen mittels photoelektrochemischer Methoden (NETPEC) - Teilprojekt 1: Einfluss des Lokalklimas auf Produktion und Speicherung der Kohlenstoffprodukte und Analyse der Katalysator-Eigenschaften
Open Date: 2021-10-01
Close Date: 2024-09-30
Grant: Close
H2Demo – Green Hydrogen Produced by Direct Solar Water Splitting
Open Date: 2021-03-01
Close Date: 2026-02-01
Grant: Close
Structure-Potential Relationships of Electrochemical Interfaces by in situ Reflection Anisotropy Spectroscopy
Open Date: 2020-03-01
Close Date:
Grant: Close
Postdoctoral Fellowship
Open Date: 2016-01-01
Close Date: 2018-01-01
Grant: Close
Photoelektrolyse von Wasser: Charakterisierung von GaP-basierten Strukturen
Open Date: 2011-10-01
Close Date: 2014-05-01
Articles (11)
<i>In Situ</i> Monitoring of the Al(110)‐[EMImCl] : AlCl<sub>3</sub> Interface by Reflection Anisotropy Spectroscopy
Recently, Al‐batteries (AlBs) have become promising candidates for post‐lithium batteries, with [EMImCl] : AlCl 3 (1 : 1.5) as the most commonly used electrolyte. However, progress in the development of AlBs is currently hindered by the lack of understanding of its solid‐electrolyte interface. Monitoring the structure of this interface under operational conditions by complementary spectroscopy could help to identify and overcome bottlenecks of the system. Reflection anisotropy spectroscopy (RAS), an optical in situ technique, provides access to physical and chemical properties of electrochemical interfaces on an atomistic level. Herein, we report the first example of RAS as an in situ characterization technique for non‐aqueous battery systems, investigating an Al(110)‐based model system. During chemical pre‐treatment in [EMImCl] : AlCl 3 , the Al(110) surface passivation film is modified. The oxide film is partially etched while an inhomogeneous passivation layer forms, increasing the surface roughness. Upon electrochemical cycling, applied potential‐dependent oscillations of the anisotropy are observed and demonstrate the applicability of RAS to monitor phenomena such as plating/stripping and surface passivation in real‐time.
Year:
2023
Collaborators (2)
Ibbi Ahmet
-
Kira Rehfeld
Professor
Eberhard Karls Universität Tübingen

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