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Molten Salts-Driven Discovery of a Polar Mixed-Anion 3D Framework at the Nanoscale: Zn4Si2O7Cl2, Charge Transport and Photoelectrocatalytic Water Splitting

  • Ram Kumar
  • , Yang Song
  • , Anissa Ghoridi
  • , Philippe Boullay
  • , Gwenaelle Rousse
  • , Christel Gervais
  • , Cristina Coelho Diogo
  • , Houria Kabbour
  • , Capucine Sassoye
  • , Patricia Beaunier
  • , Victor Castaing
  • , Bruno Viana
  • , Maria Luisa Ruiz Gonzalez
  • , José Gonzalez Calbet
  • , Christel Laberty-Robert
  • , David Portehault
  • Sorbonne Université
  • UMR 6508
  • PSL Research University
  • Collège de France
  • Université de Lille
  • Laboratoire de Réactivité de Surface
  • Laboratoire Charles Friedel (LCF)
  • Inorganic Chemistry Department
  • Complutense University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

Mixed-anion compounds widen the chemical space of attainable materials compared to single anionic compounds, but the exploration of their structural diversity is limited by common synthetic paths. Especially, oxychlorides rely mainly on layered structures, which suffer from low stability during photo(electro)catalytic processes. Herein we report a strategy to design a new polar 3D tetrahedral framework with composition Zn4Si2O7Cl2. We use a molten salt medium to enable low temperature crystallization of nanowires of this new compound, by relying on tetrahedral building units present in the melt to build the connectivity of the oxychloride. These units are combined with silicon-based connectors from a non-oxidic Zintl phase to enable precise tuning of the oxygen content. This structure brings high chemical and thermal stability, as well as strongly anisotropic hole mobility along the polar axis. These features, associated with the ability to adjust the transport properties by doping, enable to tune water splitting properties for photoelectrocatalytic H2 evolution and water oxidation. This work then paves the way to a new family of mixed-anion solids.

langue originaleAnglais
Numéro d'articlee202303487
journalAngewandte Chemie - International Edition
Volume62
Numéro de publication26
Les DOIs
étatPublié - 26 juin 2023
Modification externeOui

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