Hydrogen Generation by Visible Light Irradiation of Aqueous Solutions of Metal Complexes. An approach to the photochemical conversion and storage of solar energy
- 8 June 1979
- journal article
- research article
- Published by Wiley in Helvetica Chimica Acta
- Vol. 62 (4) , 1345-1384
- https://doi.org/10.1002/hlca.19790620449
Abstract
We describe a photochemical system for the generation of hydrogen by water reduction under visible light or sunlight irradiation of aqueous solutions containing the following components: a photosensitizer, the Ru (bipy) complex, for visible light absorption; a relay species, the Rh (bipy) complex, which mediates water reduction by intermediate storage of electrons via a reduced state; an electron donor, triethanolamine (TEOA) which provides the electrons for the reduction process and a redox catalyst, colloïdal platinum, which facilitates hydrogen formation. The conditions for efficient hydrogen production and the influence of the concentration of the components have been investigated; the metal complexes act as catalysts with high turnover numbers; excess bipyridine facilitates the reaction. The process contains two catalytic cycles: a ruthenium cycle and a rhodium cycle. The Ru cycle involves oxidative quenching of the *Ru(bipy) excited state by Rh(bipy) forming Ru(bipy) which is converted back to Ru(bipy) by oxidation of the electron donor TEOA, which is thus consumed. The Rh cycle comprises a complicated set of transformations of the initial Rh(bipy) complex. The reduced rhodium complex formed in the quenching process undergoes a series of transformations involving the Rh(bipy) complex and hydridorhodium‐bipyridine species, from which hydrogen is generated by reaction with the protons of water. In view of the storage of two electrons in the reduced rhodium species, the process is formally a dielectronic water reduction. The properties and eventual participation of [Rh(III)(bipy)2LL′]n+(L,L′ = H2O, OH−) species are investigated. It is concluded that at neutral pH in presence of excess bipyridine, the cycle involving regeneration of the Rh(bipy) complex is predominant. A number of experiments have been performed with modified systems. Hydrogen evolution is observed with other photosensitizers (like proflavin), other relay species (like Rh(dimethylbipy) or Co(II)‐bipyridine complexes), other donor species, or in absence of the platinum catalyst. It also occurs in absence of photosensitizer by sunlight of UV. irradiation of Rh(bipy) or by visible light irradiation of iridium (III)‐bibyridine complexes. These systems deserve further investigations. The present photochemical hydrogen generating system represents the reductive component of a complete water splitting process. Its role in solar energy conversion and in photochemical fuel production is discussed.Keywords
This publication has 130 references indexed in Scilit:
- Photochemistry of transition metal hydride complexes. 1. Photoinduced elimination of molecular hydrogen from chlorodihydrotris(triphenylphosphine)iridium and trihydrotris(triphenylphosphine)iridiumJournal of the American Chemical Society, 1976
- Kinetic relaxation measurement of rapid electron transfer reactions by flash photolysis. Conversion of light energy into chemical energy using the tris(2,2'-bipyridine)ruthenium(3+)-tris(2,2'-bipyridine)ruthenium(2+*) coupleJournal of the American Chemical Society, 1975
- Luminescent osmium(II) and iridium(III) complexes as photosensitizersJournal of the American Chemical Society, 1975
- Electrochemical dealkylation of aliphatic aminesThe Journal of Organic Chemistry, 1969
- The Photochemical Oxidation of Ethylenediaminetetraacetic Acid and Methionine by Ribolflavin1Journal of the American Chemical Society, 1965
- Dye Sensitized Photoöxidation1Journal of the American Chemical Society, 1959
- Photoreduction of Acridine Dyes1,2Journal of the American Chemical Society, 1959
- Photoreduction of Methylene Blue by Ethylenediaminetetraacetic Acid1a,bJournal of the American Chemical Society, 1957
- Influence of Perchloric Acid and Cerous Perchlorate upon the Photochemical Oxidation of Cerous to Ceric Perchlorate in Dilute Aqueous Perchloric AcidJournal of the American Chemical Society, 1954
- Quantum Yields of the Photochemical Reduction of Ceric Ions by Water and Evidence for the Dimerization of Ceric IonsJournal of the American Chemical Society, 1948