Stability of Catalytic Centres in Light‐Driven Hydrogen Evolution by Di‐ and Oligonuclear Photocatalysts

ORCID
0000-0002-8372-7170
Zugehörigkeit
Institute of Inorganic Chemistry I Ulm University Albert-Einstein-Allee 11 89081 Ulm Germany
Lämmle, Martin;
ORCID
0000-0001-6496-3429
Zugehörigkeit
Institute of Inorganic Chemistry I Ulm University Albert-Einstein-Allee 11 89081 Ulm Germany
Mengele, Alexander K.;
GND
131710479X
ORCID
0000-0001-7296-2856
Zugehörigkeit
Institute of Physical Chemistry Friedrich Schiller University Jena Helmholtzweg 4 07743 Jena Germany
Shillito, Georgina E.;
GND
1033832103
ORCID
0000-0002-6428-7528
Zugehörigkeit
Institute of Physical Chemistry Friedrich Schiller University Jena Helmholtzweg 4 07743 Jena Germany
Kupfer, Stephan;
ORCID
0000-0001-9635-6009
Zugehörigkeit
Institute of Inorganic Chemistry I Ulm University Albert-Einstein-Allee 11 89081 Ulm Germany
Rau, Sven

A review. In recent decades, mimicking natural photosynthesis by artificial photocatalysis represented a major research direction with the ultimate goal of reducing fossil fuel consumption through efficient solar energy harvesting. To transfer molecular photocatalysis from the lab scale to an industrially relevant process, it is important to overcome instability problems of the catalysts during light‐driven operation. As it is well‐known that many of the typically utilized noble metal‐based catalytic centres (e. g. Pt and Pd) undergo particle formation during (photo)catalysis and thus switch the whole process from a homogeneous into a heterogeneous one, an understanding of the factors governing particle formation is crucially needed. The review therefore focuses on di‐ and oligonuclear photocatalysts bearing a range of different bridging ligand architectures for drawing structure‐catalyst‐stability relationships in light‐driven intramolecular reductive catalysis. In addition, ligand effects at the catalytic centre and their implications for catalytic activity in intermolecular systems will be discussed, as will important insights into the future design of operationally stable catalysts.

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