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Molten salt synthesis of 1T/2H mixed phase MoS2 for boosting photocatalytic H2 evolution via Schottky junction under EY-sensitized system.

Authors :
Qin, Yibo
Zhang, Leilei
Yang, Baocheng
Hou, Ruipeng
Fu, Gaoliang
Huang, Tengfei
Deng, Ruixue
Zhang, Shouren
Meng, Xiangyu
Source :
Journal of Colloid & Interface Science. Apr2024, Vol. 660, p617-627. 11p.
Publication Year :
2024

Abstract

Molten salt synthesis of 1T/2H mixed phase MoS 2 for boosting photocatalytic H 2 evolution performance via Schottky junction under EY-sensitized system. [Display omitted] Clean H 2 fuel obtained from the photocatalytic water splitting to hydrogen reaction could efficiently alleviate current energy crisis and the concomitant environmental pollution problems. Therefore, it is desirable to search for a highly efficient photocatalytic system to decrease the energy barrier of water splitting reaction. Herein, the 1T/2H mixed phase MoS 2 sample with Schottky junction between contact interfaces is developed through molten salt synthesis for photocatalytic hydrogen production under a dye-sensitized system (Eosin Y-TEOA-MoS 2) driven by the visible light. In mixed phase MoS 2 sample, the photogenerated electrons of 2H-phase MoS 2 migrated to the 1T-phase MoS 2 are difficult to jump back because of the existence of Schottky barrier, which greatly suppresses the quenching of EY and therefore results in an enhanced hydrogen evolution performance. Therefore, the optimized MoS 2 sample (MoS 2 -350) has an initial hydrogen evolution rate of 213 μmol h−1 and corresponding apparent quantum yield of 36.1 % at 420 nm, far higher than those of pure Eosin Y. It is strongly confirmed by the steady‐state/time-resolved photoluminescence (PL) spectra and transient photocurrent response experiments. With the assistance of Density functional theory (DFT) calculation, the function of Schottky junction in photocatalytic hydrogen evolution reaction is well explained. In addition, a new and universal method (SVM curve) of judging oxidation or reduction quenching for photosensitizers is proposed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00219797
Volume :
660
Database :
Academic Search Index
Journal :
Journal of Colloid & Interface Science
Publication Type :
Academic Journal
Accession number :
175343062
Full Text :
https://doi.org/10.1016/j.jcis.2024.01.107