Pulsed Laser Phosphorus Doping and Nanocomposite Catalysts Deposition in Forming a-MoSx/NP-Mo//n+p-Si Photocathodes for Efficient Solar Hydrogen Production

被引:9
作者
Fominski, Vyacheslav [1 ]
Demin, Maxim [2 ]
Fominski, Dmitry [1 ]
Romanov, Roman [1 ]
Rubinkovskaya, Oxana [1 ]
Shvets, Petr [2 ]
Goikhman, Aleksandr [2 ]
机构
[1] Natl Res Nucl Univ MEPhI Moscow Engn Phys Inst, Kashirskoe Sh 31, Moscow 115409, Russia
[2] Immanuel Kant Baltic Fed Univ, A Nevskogo St 14, Kaliningrad 236016, Russia
基金
俄罗斯科学基金会;
关键词
amorphous molybdenum sulfide; Si-based photocathode; laser-based technique; n(+)p-junction; hydrogen evolution reaction; AMORPHOUS MOLYBDENUM SULFIDE; THIN-FILMS; EVOLUTION; MOS2; ELECTROCATALYST; STRAIN;
D O I
10.3390/nano12122080
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Pulsed laser deposition of nanostructured molybdenum sulfide films creates specific nonequilibrium growth conditions, which improve the electrocatalytic properties of the films in a hydrogen evolution reaction (HER). The enhanced catalytic performance of the amorphous a-MoSx (2 <= x <= 3) matrix is due to the synergistic effect of the Mo nanoparticles (Mo-NP) formed during the laser ablation of a MoS2 target. This work looks at the possibility of employing a-MoSx/NP-Mo films (4 and 20 nm thickness) to produce hydrogen by photo-stimulated HER using a p-Si cathode. A simple technique of pulsed laser p-Si doping with phosphorus was used to form an n(+)p-junction. Investigations of the energy band arrangement at the interface between a-MoSx/NP-Mo and n(+)-Si showed that the photo-HER on an a-MoSx/NP-Mo//n(+)p-Si photocathode with a 20 nm thick catalytic film proceeded according to a Z-scheme. The thickness of interfacial SiOy(P) nanolayer varied little in photo-HER without interfering with the effective electric current across the interface. The a-MoSx/NP-Mo//n(+)p-Si photocathode showed good long-term durability; its onset potential was 390 mV and photocurrent density was at 0 V was 28.7 mA/cm(2). The a-MoSx/NP-Mo//n(+)p-Si photocathodes and their laser-based production technique offer a promising pathway toward sustainable solar hydrogen production.
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页数:20
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