Data_Sheet_1_Development of Visible-Light Driven Cu(I) Complex Photosensitizers for Photocatalytic CO2 Reduction.pdf
The visible-light responsive Cu(I)-complex photosensitizers were developed by introducing various aromatic substituents at the 4,7-positions of a 2,9-dimethyl-1,10-phenanthroline (dmp) ligand in a heteroleptic CuI(dmp)(DPEphos)+-type complexes (DPEphos = [2-(diphenylphosphino)phenyl]ether) for photocatalytic CO2 reduction. Introducing biphenyl groups (Bp-) on the dmp ligand enhanced the molar extinction coefficient (ε) of the metal-to-ligand charge transfer (MLCT) band in the visible region (ε = 7,500 M−1cm−1) compared to that of the phenyl (Ph-)-containing analog (ε = 5,700 M−1cm−1 at λmax = 388 nm). However, introducing 4-R-Ph- groups (R = the electron-withdrawing groups NC-, or NO2-) led to a red shift in the band to λmax = 390, 400, and 401 nm, respectively. Single-crystal X-ray analysis showed the Ph- groups were twisted because of the steric repulsion between the 2,6-protons of the Ph- groups and 5,6-protons of the dmp ligand. The result strongly indicated that the π-conjugation effect of the 4-R-Ph- groups is so weak that the lowering of the energy of the dmp π* orbitals is small. However, when 4-R-ph- was substituted by a 5-membered heterorings, there was a larger red shift, leading to an increase in the ε value of the MLCT absorption band. Thus, the substitution to 2-benzofuranyl- groups resulted in visible-light absorption up to 500 nm and a shoulder peak at around 420 nm (ε = 12,300 M−1cm−1) due to the expansion of π-conjugation over the substituted dmp ligand. The photocatalytic reaction for CO2 reduction was tested using the obtained CuI complexes as photosensitizers in the presence of a Fe(dmp)2(NCS)2 catalyst and 1,3-dimethyl-2-phenyl-2,3-dihydro-1H-benzo[d]imidazole as a sacrificial reductant, which showed improved CO generation.
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References
- https://doi.org//10.1021/j100785a001
- https://doi.org//10.1039/f29827800595
- https://doi.org//10.1002/chem.201602598
- https://doi.org//10.1039/P29840001303
- https://doi.org//10.1021/ja012247h
- https://doi.org//10.1021/ja971321m
- https://doi.org//10.1021/ic960698a
- https://doi.org//10.1039/C8SE00521D
- https://doi.org//10.1002/chem.201604005
- https://doi.org//10.1515/pac-2014-0706
- https://doi.org//10.1021/ic4020042
- https://doi.org//10.1021/ja407816f
- https://doi.org//10.1016/j.poly.2014.04.060
- https://doi.org//10.1002/chem.201503812
- https://doi.org//10.1002/anie.201205915
- https://doi.org//10.1002/ejic.201501436
- https://doi.org//10.1021/acs.inorgchem.7b03273
- https://doi.org//10.1016/0010-8545(85)80043-6
- https://doi.org//10.1002/chem.201302091
- https://doi.org//10.1002/cphc.201500223
- https://doi.org//10.1021/ja00409a048
- https://doi.org//10.1021/ed072p1086.1
- https://doi.org//10.1002/cphc.201402585
- https://doi.org//10.1039/C6GC03527B
- https://doi.org//10.1016/S0010-8545(98)90045-5
- https://doi.org//10.1039/B912178A
- https://doi.org//10.1021/acscatal.6b02181
- https://doi.org//10.1021/jacs.8b10619
- https://doi.org//10.1021/jacs.6b01970
- https://doi.org//10.1016/j.jcat.2013.04.002
- https://doi.org//10.1039/C5DT00835B
- https://doi.org//10.1039/DT9910000849
- https://doi.org//10.1007/s00894-015-2857-0
- https://doi.org//10.1016/j.jphotochemrev.2015.09.001
- https://doi.org//10.1002/adfm.200601053
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