4.8 Article

Triggering of Low-Valence Molybdenum in Multiphasic MoS2 for Effective Reactive Oxygen Species Output in Catalytic Fenton-like Reactions

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 11, Issue 30, Pages 26781-26788

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.9b05978

Keywords

molybdenum disulfide; Fenton-like Reactions; permonosulfate; reactive oxygen species; low-valence molybdenum

Funding

  1. National Natural Science Research Fund of China [51708543, 51738013]
  2. Major Science and Technology Program for Water Pollution Control and Treatment of China [2017ZX07402001]

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Utilization of photocatalytic reactions to trigger persistent large-scale reactions could be an alternative path for practical solar energy conversion to relieve environmental pressure nowadays. We took the view that the photoinduction of transition states was critical for improving the activity of catalytic reactions. On the basis of theoretical predictions, the reaction Gibbs free energy of permonosulfate (PMS) activation can be rapidly reduced by molybdenum with low valence. We therefore constructed a multiphasic molybdenum dichalcogenide(MoS2) heterostructure-based photosystem that enabled generation of Mo transition states by visible light excitation. According to combination results of electron paramagnetic resonance, photoelectrochemical analysis, and X-ray photoelectron spectroscopy, we confirmed that the optimized 2H/1T heterojunction permitted the transport of excited interfacial electrons from the semiconductive 2H phase to the metallic IT phase, and synchronously partially reduced Mo(IV) to Mo(III) at the interface. This intensified the charge transfer between the MoS2 and PMS-containing solution, thereby efficiently splitting the PMS molecules into (OH)-O-center dot and SO4 center dot- radicals. In this system, a type of refractory herbicide, 2,4-dichlorophenoxyacetic acid (2,4-D), can be degraded within 60 min at a rate constant of 6.20 x 10(-2) min(-1) using multiphasic MoS2 with a 1T/2H ratio of 1:1.

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