[Rh<sup>III</sup>(dmbpy)<sub>2</sub>Cl<sub>2</sub>]<sup>+</sup> as a highly efficient catalyst for visible-light-driven hydrogen production in pure water: comparison with other rhodium catalysts

We report a very efficient homogeneous system for the visible-light-driven hydrogen production in pure aqueous solution at room temperature. This comprises [RhIII(dmbpy)2Cl2]Cl (1) as catalyst, [Ru(bpy)3]Cl2 (PS1) as photosensitizer, and ascorbate as sacrificial electron donor. Comparative studies in aqueous solutions also performed with other known rhodium catalysts, or with an iridium photosensitizer, show that 1) the PS1/1/ascorbate/ascorbic acid system is by far the most active rhodium-based homogeneous photocatalytic system for hydrogen production in a purely aqueous medium when compared to the previously reported rhodium catalysts, Na3[RhI(dpm)3Cl] and [RhIII(bpy)Cp*(H2O)]SO4 and 2) the system is less efficient when [IrIII(ppy)2(bpy)]Cl (PS2) is used as photosensitizer. Because catalyst 1 is the most efficient rhodium-based H2-evolving catalyst in water, the performance limits of this complex were further investigated by varying the PS1/1 ratio at pH 4.0. Under optimal conditions, the system gives up to 1010 turnovers versus the catalyst with an initial turnover frequency as high as 857 TON h−1. Nanosecond transient absorption spectroscopy measurements show that the initial step of the photocatalytic H2-evolution mechanism is a reductive quenching of the PS1 excited state by ascorbate, leading to the reduced form of PS1, which is then able to reduce [RhIII(dmbpy)2Cl2]+ to [RhI(dmbpy)2]+. This reduced species can react with protons to yield the hydride [RhIII(H)(dmbpy)2(H2O)]2+, which is the key intermediate for the H2 production.

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Source ISSN: 0947-6539
Author Stoll, T., Gennari, M., Serrano, I., Fortage, J., Chauvin, J., Odobel, F., Rebarz, M., Poizat, O., Sliwa, M., Deronzier, A., Collomb, M.N.
Maintainer CCSD
Last Updated May 14, 2026, 19:59 (UTC)
Created May 14, 2026, 19:59 (UTC)
Identifier hal-00782675
Language en
contributor Département de Chimie Moléculaire - Chimie Inorganique Redox (DCM - CIRE) ; Département de Chimie Moléculaire (DCM) ; Université Joseph Fourier - Grenoble 1 (UJF)-Institut de Chimie - CNRS Chimie (INC-CNRS)-Centre National de la Recherche Scientifique (CNRS)-Université Joseph Fourier - Grenoble 1 (UJF)-Institut de Chimie - CNRS Chimie (INC-CNRS)-Centre National de la Recherche Scientifique (CNRS)
creator Stoll, T.
date 2013-05-14T00:00:00
harvest_object_id 4b417096-c5b9-4436-ab69-a483fefac642
harvest_source_id 3374d638-d20b-4672-ba96-a23232d55657
harvest_source_title test moissonnage SELUNE
metadata_modified 2025-11-20T00:00:00
relation info:eu-repo/semantics/altIdentifier/doi/10.1002/chem.201202555
set_spec type:ART