Solar energy conversion using photochemical molecular devices: photocatalytic hydrogen production from water using mixed-metal supramolecular complexes
- 6 March 2009
- journal article
- research article
- Published by Royal Society of Chemistry (RSC) in Energy & Environmental Science
- Vol. 2 (4) , 410-419
- https://doi.org/10.1039/b812049h
Abstract
Photocatalytic generation of hydrogen from water is an integral part of the next generation clean fuel technologies. The conversion of solar energy into useful chemical energy is of great interest in contemporary investigations. The splitting of water is a multi-electron process involving the breaking and making of chemical bonds which requires multi-component photocatalytic systems. Supramolecular complexes [{(TL)2Ru(BL)}2RhX2](Y)5 (where TL = terminal ligand, BL = bridging ligand, X = Cl− or Br−, and Y = PF6 − or Br−) have been synthesized and studied for their light absorbing, electrochemical and photocatalytic properties. The supramolecular complexes in this investigation are multi-component systems comprised of two ruthenium based light absorbers connected through bridging ligands to a central rhodium, which acts as an electron collecting center upon excitation. These complexes absorb light throughout the ultraviolet and visible regions of the solar spectrum. The supramolecular complexes possess ruthenium based highest occupied molecular orbitals (HOMO) and a rhodium based lowest unoccupied molecular orbital (LUMO). These molecular devices have been investigated and shown to function as photoinitiated electron collectors at the reactive rhodium metal center, and explored as photocatalysts to generate hydrogen from water in an aqueous solution in the presence of an electron donor.Keywords
This publication has 55 references indexed in Scilit:
- Hydrogen Production by Molecular PhotocatalysisChemical Reviews, 2007
- Molecular Chemistry of Consequence to Renewable EnergyInorganic Chemistry, 2005
- Oxygen and hydrogen photocatalysis by two-electron mixed-valence coordination compoundsCoordination Chemistry Reviews, 2005
- Artificial Photosynthesis: Solar Splitting of Water to Hydrogen and OxygenAccounts of Chemical Research, 1995
- Excited-state interactions in ligand-bridged chromophore-quencher complexes containing rhodium(III) and ruthenium(II) polypyridyl unitsThe Journal of Physical Chemistry, 1992
- Ru(II) polypyridine complexes: photophysics, photochemistry, eletrochemistry, and chemiluminescenceCoordination Chemistry Reviews, 1988
- Photophysics, photochemistry and solar energy conversion with tris(bipyridyl)ruthenium(II) and its analoguesCoordination Chemistry Reviews, 1982
- Photochemistry of tris(2,2'-bipyridine)ruthenium(2+) ionJournal of the American Chemical Society, 1982
- Hydrogen Generation by Visible Light Irradiation of Aqueous Solutions of Metal Complexes. An approach to the photochemical conversion and storage of solar energyHelvetica Chimica Acta, 1979
- Electrochemical Photolysis of Water at a Semiconductor ElectrodeNature, 1972