Electrochemical Synthesis of a WO3/MoSx Heterostructured Bifunctional Catalyst for Efficient Overall Water Splitting

被引:5
|
作者
Levinas, Ramunas [1 ,2 ]
Tsyntsaru, Natalia [1 ,3 ]
Cesiulis, Henrikas [1 ]
Viter, Roman [4 ,5 ]
Grundsteins, Karlis [4 ]
Tamasauskaite-Tamasiunaite, Loreta [2 ]
Norkus, Eugenijus [2 ]
机构
[1] Vilnius Univ, Fac Chem & Geosci, LT-03225 Vilnius, Lithuania
[2] Ctr Phys Sci & Technol FTMC, State Res Inst, LT-10257 Vilnius, Lithuania
[3] Moldova State Univ, Inst Appl Phys, Kishinev 2028, Moldova
[4] Univ Latvia, Inst Atom Phys & Spect, LV-1586 Riga, Latvia
[5] Sumy State Univ, Ctr Collect Use Sci Equipment, UA-40018 Sumy, Ukraine
关键词
plasma electrolytic oxidation; tungsten oxide; molybdenum sulfide; heterostructure; water splitting; electrocatalysis; hydrogen evolution reaction; photoanode; scanning electrochemical microscopy; HYDROGEN EVOLUTION REACTION; PLASMA ELECTROLYTIC OXIDATION; ELECTRODEPOSITION; FILMS; MECHANISM; MOS2;
D O I
10.3390/coatings13040673
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Photo-/electrochemical water splitting can be a suitable method to produce "green" hydrogen and oxygen by utilizing renewable energy or even direct sunlight. In order to carry out photoelectrochemical (PEC) water splitting, a photoanode based on transition metal oxides, which absorbs photons and produces photoexcited electron-hole pairs, is needed. The positively charged holes can then participate in the water oxidation reaction. Meanwhile, a cathodic hydrogen evolution reaction (HER) can occur more efficiently with electrocatalytic materials that enhance the adsorption of H+, such as MoS2. In this study, it was shown that WO3/MoSx heterostructured materials can be synthesized by an electrochemical method called plasma electrolytic oxidation (PEO). During this process, many micro-breakdowns of the oxide layer occur, causing ionization of the oxide and electrolyte. The ionized mixture then cools and solidifies, resulting in crystalline WO3 with incorporated MoSx. The surface and cross-sectional morphology were characterized by SEM-FIB, and the coatings could reach up to 3.48 mu m thickness. Inclusion of MoSx was confirmed by EDX as well as XPS. Synthesis conditions were found to have an influence on the band gap, with the lowest value being 2.38 eV. Scanning electrochemical microscopy was used to map the local HER activity and correlate the activity hotspots to MoSx's content and surface topography. The bifunctional catalyst based on a WO3/MoSx heterostructure was evaluated for PEC and HER water-splitting activities. As a photoanode, it could reach up to 6% photon conversion efficiency. For HER in acidic media, a Tafel slope of 42.6 mV center dot dec(-1) can be reached.
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页数:19
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