Issue 18, 2021

SnNb2O6/NiCo-LDH Z-scheme heterojunction with regulated oxygen vacancies obtained by engineering the crystallinity for efficient and renewable photocatalytic H2 evolution

Abstract

Designing highly active and durable amorphous photocatalysts for hydrogen evolution via water splitting is still a significant challenge. Weakening of the crystallinity by engineering has been used to prepare four SnNb2O6/NiCo-LDH composites with different crystallinities. Among them, the amorphous–amorphous SnNb2O6/NiCo-LDH (SNO–LDH) Z-scheme heterojunction exhibits abundant oxygen vacancies (Ov). The as-prepared SNO–LDH (10 : 1) catalyst shows an optimal visible-light catalytic H2 production rate of 82.2 μmol h−1 g−1 that is four times greater than that of pure SnNb2O6, and reveals a high renewability (retained rate of 75.1%) after five cyclic experiments, which is attributed to the high efficiency of the photogenerated carrier separation, and the self-recovery of active metal and oxygen vacancies by regulating the crystallinity of the recycled catalysts. This study offers a novel viewpoint into the design of highly active and durable amorphous photocatalysts for use in energy and environmental applications.

Graphical abstract: SnNb2O6/NiCo-LDH Z-scheme heterojunction with regulated oxygen vacancies obtained by engineering the crystallinity for efficient and renewable photocatalytic H2 evolution

Supplementary files

Article information

Article type
Paper
Submitted
07 Jun 2021
Accepted
30 Jul 2021
First published
31 Jul 2021

Catal. Sci. Technol., 2021,11, 6281-6290

SnNb2O6/NiCo-LDH Z-scheme heterojunction with regulated oxygen vacancies obtained by engineering the crystallinity for efficient and renewable photocatalytic H2 evolution

H. Li, J. Zhang, T. Yang, Y. Wang, H. Gao, X. Wang and Z. Chai, Catal. Sci. Technol., 2021, 11, 6281 DOI: 10.1039/D1CY01019K

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