Defect‐induced Ordered Mesoporous Titania Molecular Sieves: A Unique and Highly Efficient Hetero‐phase Photocatalyst for Solar Hydrogen Generation

Author:

Gupta Sanjeev1,Vatti Surya Kumar1,Gu Qinfen2,Wagh Dipti3,Manyar Haresh3,Selvam Parasuraman1345ORCID

Affiliation:

1. National Centre for Catalysis Research (NCCR) and Department of Chemistry Indian Institute of Technology-Madras Chennai 600036 India

2. Powder Diffraction Beamline Australian Synchrotron Clayton VIC 3168 Australia

3. School of Chemistry and Chemical Engineering Queen's University Belfast, David-Keir Building, 39–123 Stranmillis Road Belfast BT9 5AG United Kingdom

4. International Research Organization for Advanced Science and Technology (IROAST) Kumamoto University 2-39-1, Kurokami Kumamoto 860-8555 Japan

5. Delaware Energy Institute University of Delaware 221, Academy Street Newark DE 19716 United States of America

Abstract

AbstractThe conversion of solar energy into fuel has gained significant interest, particularly in photocatalytic water splitting, and the materials that efficiently generate hydrogen from water or aqueous solution using solar irradiation are highly desired for the hydrogen economy. Photocatalysts made of N‐doped TiO2 are frequently utilized for breaking of water molecules in the process of generating hydrogen. To achieve this target, a unique defect‐induced nitrogen‐doped highly organized 2D‐hexagonal periodic mesoporous titania, TiO2‐xNy with a well‐crystallized framework is synthesized in a reproducible way using structure‐directing agents, e. g., F108, F127, P123, and CTAB. The nitrogen is incorporated into these samples through a facile method involving the calcination of templated materials in an air. A systematic characterization of the resulting ordered mesoporous titania employing a battery of experimental techniques indicates the presence of considerable amounts of intrinsic defects, viz., trapped electrons in oxygen vacancy and/or Ti3+ centres via nitrogen‐doping in the titania matrix. These defects in turn promote the charge separation of photogenerated excitons, and therefore exhibit excellent photocatalytic activity for the hydrogen evolution reaction as compared to commercial titania such as Aeroxide®P‐25. The superior activity of the N‐doped mesoporous TiO2 is attributed to the synergistic effect of facile charge migration with high carrier density, unique phase composition (bronze and anatase), slow recombination of photo‐induced excitons, and enhanced absorbance from ultra‐violet to the visible region.

Funder

Queen's University Belfast

Publisher

Wiley

Subject

Materials Chemistry,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Biomaterials

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