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Bio‐inspired Photocatalytic Ruthenium Complexes: Synthesis, Optical Properties, and Solvatochromic Effect
Author(s) -
Weissman Adam,
Amir Dan,
Elias Yuval,
Pinkas Iddo,
Mathias JennyLee,
Benisvy Laurent,
Salomon Adi
Publication year - 2018
Publication title -
chemphyschem
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.016
H-Index - 140
eISSN - 1439-7641
pISSN - 1439-4235
DOI - 10.1002/cphc.201701061
Subject(s) - solvatochromism , ruthenium , imidazole , photochemistry , photocatalysis , chemistry , phenol , radical , molecule , organic chemistry , catalysis
We report the synthesis, characterization, and photo‐physical properties of two new ruthenium II ‐phenol‐imidazole complexes. These bio‐mimetic complexes have potential as photocatalysts for water splitting. Owing to their multiple phenol‐imidazole groups, they have a higher probability of light‐induced radical formation than existing complexes. The newly synthesized complexes show improved overlap with the solar spectrum compared to other ruthenium II ‐phenol‐imidazole complexes, and their measured lifetimes are suitable for light‐induced radical formation. In addition, we conducted solvatochromic absorption measurements, which elegantly follow Marcus theory, and demonstrate the symmetry differences between the two complexes. The solvatochromic measurements further imply electron localization onto one of the ligands. The new complexes may find applications in photocatalysis, dye‐sensitized solar cells, biomedicine, and sensing. Moreover, their multiple chelating units make them promising candidates for light‐activated metal organic radical frameworks, i.e. metal‐organic frameworks that contain organic radicals activated by light.
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