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Updated: Sep 16, 2025

The Effect of Interfacial Chemical Bonding in TiO2-SiO2 Composites on Their Photocatalytic NOx Abatement Performance
Published on: July 4, 2017
Fe─N4-Anchored Carbon Layer Patched TiO2 Cavities to Construct an "In-Lattice Heterojunction" for Enhanced
Tian-You Chen1, Yi-Ran Ying1, Jing Wu1
1School of Science, China University of Geosciences (Beijing), Beijing, 100083, China.
Abstract:
Efficient charge separation and carrier transfer are critical determinants of the performance of photocatalysts for nitrogen reduction reactions (NRR) which are critical for agricultural and chemical industries. In this study, a novel type of heterostructure, termed an "In-Lattice heterojunction", has been constructed by introducing a Fe─N4-anchored carbon layer (Fe─N─C) onto the surface of defective TiO2 (D-TiO2), as well as implanting it into the cavities of D-TiO2. The in-lattice heterojunction, defined as FNCTO, achieves efficient radial carrier transfer along the Ti─C─N─Fe in-lattice atomic channel and greatly promoted N2 adsorption benefiting photocatalytic NRR. Thus, FNCTO exhibits an excellent photocatalytic N2 reduct`ion into NH3 activity (88 µmol g-1 h-1), obviously higher than that of Fe─N─C sites on noncavity P25, illustrating the crucial role of cavity patch induced in-lattice heterojunction. This study paves a way for the development of high-performance Fe─N─C atomic photocatalysts based on noncarbon materials.
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