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Unusual Stability of Dyads during Photochemical Hydrogen Production

  • Johannes Prock
  • , Christof Strabler
  • , Wolfgang Viertl
  • , Holger Kopacka
  • , Dagmar Obendorf
  • , Thomas Müller
  • , Elisa Tordin
  • , Simon Salzl
  • , Günther Knör (Herausgeber*in)
  • , Matteo Mauro
  • , Luisa DeCola (Herausgeber*in)
  • , Peter Brüggeller (Herausgeber*in)

Publikation: Beitrag in FachzeitschriftArtikelBegutachtung

Abstract

Dyads for photochemical water splitting often suffer from instability during irradiation with visible light. However, the use of bis(bidentate) phosphines forming a five-membered ring enhances their stability. The coordination of these phosphorus based chelates to soft metals like Pd(II) prolongs the photocatalytic activity to 1000 hours. To avoid contribution to hydrogen production by colloidal metal, a small amount of Hg is added to the reaction mixture. In the course of our investigations it turned out, that colloidal palladium was not able to produce hydrogen under our irradiation conditions. As soon as metallic palladium emerged in our reaction vessels, no further hydrogen production was detected. This is confirmed by the observation that the hydrogen production depends on the kind of ancillary ligands present in the dyads. Furthermore, it is also possible to produce hydrogen in an intermolecular way. Using different bidentate diphosphines instead of a bis(bidentate) tetraphosphine leads to this intermolecular approach, where the chromophore and the water reduction catalyst (WRC) belong now to two molecules. In this case the TON is sensitive to the type of diphosphine, which is only possible, if intact molecules act as catalysts and no free palladium(0)is formed.
OriginalspracheEnglisch
Seiten (von - bis)20936-20948
Seitenumfang13
FachzeitschriftDalton Transactions
Volume44
Ausgabenummer48
DOIs
PublikationsstatusVeröffentlicht - Nov. 2015

Wissenschaftszweige

  • 211908 Energieforschung
  • 104 Chemie
  • 104011 Materialchemie
  • 104016 Photochemie
  • 104021 Strukturchemie
  • 104003 Anorganische Chemie
  • 104008 Katalyse
  • 104015 Organische Chemie

JKU-Schwerpunkte

  • Nano-, Bio- and Polymer-Systems: From Structure to Function
  • TNF Allgemein

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