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题名

Metal-organic coordination polymers-derived ultra-small MoC nanodot/N-doped carbon combined with CdS: A hollow Z-type catalyst for stable and efficient H2 production/CO2 reduction

作者
通讯作者Fang,Pengfei
发表日期
2023-01-15
DOI
发表期刊
ISSN
0169-4332
EISSN
1873-5584
卷号608
摘要
Hollow N-doped carbon nanoflower with highly dispersed MoC nanodot embedded forms a cocatalyst and then CdS nanoparticles are grown to construct CdS-C/MoC hollow Z-type heterostructures for hydrogen production and CO reduction. The optimized CdS-C/MoC (CCM2) heterojunction exhibits an enhanced hydrogen evolution reaction (HER) rate of 13917.7 μmol h g that is 4.5-fold as high as that for Pt/CdS with equal load rate via photo-deposition method and highly stabilizes at least 5 cycles (15 h) while HER rate of bare CdS decreases to 38.2 % (267.4 μmol h g ) at the second time. The apparent quantum efficiency (AQE) of CCM2 achieves 82.35 % at λ = 420 nm. Moreover, the CO reduction generation rate of CCM2 is 5.57 μmol h g . Photostable and efficient photocatalytic activities are attributed to special Z-type mechanisms where CdS acts as electrons enrichment site to greatly suppress photo-corrosion, and hollow architecture with multi-scattering of incident light. The reduced H adsorption free energy (ΔG) shows the C/MoC co-catalyst contributes to the enhanced hydrogen production. Density functional theory calculations and electron paramagnetic resonance analysis, further validate the direction of electrons transfer in CdS-C/MoC system and special Z-type mechanisms for stable photocatalytic performance.
关键词
相关链接[Scopus记录]
收录类别
SCI ; EI
语种
英语
学校署名
其他
资助项目
[2019YFA0210003] ; [12275201]
WOS研究方向
Chemistry ; Materials Science ; Physics
WOS类目
Chemistry, Physical ; Materials Science, Coatings & Films ; Physics, Applied ; Physics, Condensed Matter
WOS记录号
WOS:000875309000004
出版者
EI入藏号
20224212900418
EI主题词
Cadmium sulfide ; Carbon ; Carbon dioxide ; Catalysts ; Coordination reactions ; Density functional theory ; Doping (additives) ; Free energy ; Hydrogen production ; II-VI semiconductors ; Image enhancement ; Nanodots ; Nanoflowers ; Nanorods ; Organometallics ; Paramagnetic resonance ; Photocatalytic activity
EI分类号
Gas Fuels:522 ; Thermodynamics:641.1 ; Magnetism: Basic Concepts and Phenomena:701.2 ; Semiconducting Materials:712.1 ; Semiconductor Devices and Integrated Circuits:714.2 ; Nanotechnology:761 ; Physical Chemistry:801.4 ; Chemical Reactions:802.2 ; Chemical Agents and Basic Industrial Chemicals:803 ; Chemical Products Generally:804 ; Organic Compounds:804.1 ; Inorganic Compounds:804.2 ; Probability Theory:922.1 ; Atomic and Molecular Physics:931.3 ; Quantum Theory; Quantum Mechanics:931.4 ; Solid State Physics:933
ESI学科分类
MATERIALS SCIENCE
Scopus记录号
2-s2.0-85139596941
来源库
Scopus
引用统计
被引频次[WOS]:8
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/406559
专题理学院_物理系
作者单位
1.School of Physics and Technology,Key Laboratory of Nuclear Solid State Physics Hubei Province,Wuhan University,Wuhan,430072,China
2.State Key Laboratory of Catalysis,Dalian Institute of Chemical Physics,Chinese Academy of Sciences,Dalian,116023,China
3.Department of Physics,Southern University of Science and Technology,Shenzhen,518055,China
4.School of Physical Sciences and Technology,ShanghaiTech University,Shanghai,201210,China
推荐引用方式
GB/T 7714
Zhang,Siyi,Du,Shiwen,Wang,Yumin,et al. Metal-organic coordination polymers-derived ultra-small MoC nanodot/N-doped carbon combined with CdS: A hollow Z-type catalyst for stable and efficient H2 production/CO2 reduction[J]. APPLIED SURFACE SCIENCE,2023,608.
APA
Zhang,Siyi.,Du,Shiwen.,Wang,Yumin.,Han,Ziwu.,Ma,Wenmei.,...&Fang,Pengfei.(2023).Metal-organic coordination polymers-derived ultra-small MoC nanodot/N-doped carbon combined with CdS: A hollow Z-type catalyst for stable and efficient H2 production/CO2 reduction.APPLIED SURFACE SCIENCE,608.
MLA
Zhang,Siyi,et al."Metal-organic coordination polymers-derived ultra-small MoC nanodot/N-doped carbon combined with CdS: A hollow Z-type catalyst for stable and efficient H2 production/CO2 reduction".APPLIED SURFACE SCIENCE 608(2023).
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