Rationalizing In Situ Active Repair in Hydrogen Evolution Photocatalysis via Non‐Invasive Raman Spectroscopy
Klingler, S., Bagemihl, B., Mengele, A., Kaufhold, S., Myllyperkiö, P., Ahokas, J., Pettersson, M., Rau, S., & Mizaikoff, B. (2023). Rationalizing In Situ Active Repair in Hydrogen Evolution Photocatalysis via Non‐Invasive Raman Spectroscopy. Angewandte Chemie, 62(44 ), Article e202306287. https://doi.org/10.1002/anie.202306287
Published in
Angewandte ChemieAuthors
Date
2023Copyright
© 2023 The Authors. Angewandte Chemie International Edition published by Wiley-VCH GmbH
Currently, most photosensitizers and catalysts used in the field of artificial photosynthesis are still based on rare earth metals and should thus be utilized as efficiently and economically as possible. While repair of an inactivated catalyst is a potential mitigation strategy, this remains a challenge. State-of-the-art methods are crucial for characterizing reaction products during photocatalysis and repair, and are currently based on invasive analysis techniques limiting real-time access to the involved mechanisms. Herein, we use an innovative in situ technique for detecting both initially evolved hydrogen and after active repair via advanced non-invasive rotational Raman spectroscopy. This facilitates unprecedently accurate monitoring of gaseous reaction products and insight into the mechanism of active repair during light-driven catalysts enabling the identification of relevant mechanistic details along with innovative repair strategies.
Publisher
Wiley-VCH VerlagISSN Search the Publication Forum
1433-7851Publication in research information system
https://converis.jyu.fi/converis/portal/detail/Publication/184203914
Metadata
Show full item recordCollections
Additional information about funding
B.B. acknowledges support by the Studien stiftung des Deutschen Volkesfor a PhD scholarship. All authors acknowledge the Deutsche Forschungs gesellschaft (DFG, German Science Foundation) for funding within the Sonder forschungsbereich(SFB)TRR234 CataLight (project 34 number 364549901; project C2 and A1).License
Related items
Showing items with similar title or keywords.
-
Laser-induced time-resolved luminescence in analysis of rare earth elements in apatite and calcite
Romppanen, Sari; Häkkänen, Heikki; Kaski, Saara (Elsevier, 2021)Laser-induced time-resolved luminescence was used to study rare earth element (REE) containing natural apatite and calcite minerals. The luminescence from 400 nm to 700 nm in the minerals was analyzed with excitation ranges ... -
Singular value decomposition approach to the yttrium occurrence in mineral maps of rare earth element ores using laser-induced breakdown spectroscopy
Romppanen, Sari; Häkkänen, Heikki; Kaski, Saara (Pergamon, 2017)Laser-induced breakdown spectroscopy (LIBS) has been used in analysis of rare earth element (REE) ores from the geological formation of Norra Kärr Alkaline Complex in southern Sweden. Yttrium has been detected in eudialyte ... -
Laserspektroskopia mineraalianalytiikassa : nopeasti ja tehokkaasti monipuolista informaatiota mineraaleista
Romppanen, Sari; Kaski, Saara; Häkkänen, Heikki (Suomen geologinen seura, 2022)Laserspektroskopiset menetelmät ovat nopeita ja tehokkaita mineraalitutkimuksen keinoja, koska analyysi voidaan tehdä suoraan näytteen pinnalta ja jopa metrien päästä kohteesta. Nykyteknologian ansiosta laserspektroskopian ... -
VUV-diagnostics of low temperature hydrogen plasmas
Komppula, Jani (University of Jyväskylä, 2015) -
Experimental and theoretical investigation of hydrogen bonded complexes between glycolic acid and water
Krupa, Justyna; Kosendiak, Iwona; Wierzejewska, Maria; Lundell, Jan (Elsevier, 2025)Theoretical MP2 and B3LYPD3 calculations, as well as experimental matrix isolation infrared spectroscopy studies, were used to investigate the 1:1 complexes formed between glycolic acid and water. Out of five computationally ...