首页> 美国卫生研究院文献>Scientific Reports >Highly Efficient Photocatalytic Z-Scheme Hydrogen Production over Oxygen-Deficient WO3–x Nanorods supported Zn0.3Cd0.7S Heterostructure
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Highly Efficient Photocatalytic Z-Scheme Hydrogen Production over Oxygen-Deficient WO3–x Nanorods supported Zn0.3Cd0.7S Heterostructure

机译:缺氧的WO3-x纳米棒支撑的Zn0.3Cd0.7S异质结构上的高效光催化Z方案制氢

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摘要

The demand for clean renewable energy is increasing due to depleting fossil fuels and environmental concerns. Photocatalytic hydrogen production through water splitting is one such promising route to meet global energy demands with carbon free technology. Alternative photocatalysts avoiding noble metals are highly demanded. Herein, we fabricated heterostructure consist of oxygen-deficient WO3–x nanorods with Zn0.3Cd0.7S nanoparticles for an efficient Z-Scheme photocatalytic system. Our as obtained heterostructure showed photocatalytic H2 evolution rate of 352.1 μmol h−1 with apparent quantum efficiency (AQY) of 7.3% at λ = 420 nm. The photocatalytic hydrogen production reaches up to 1746.8 μmol after 5 hours process in repeatable manner. The UV-Visible diffuse reflectance spectra show strong absorption in the visible region which greatly favors the photocatalytic performance. Moreover, the efficient charge separation suggested by electrochemical impedance spectroscopy and photocurrent response curves exhibit enhancement in H2 evolution rate. The strong interface contact between WO3–x nanorods and Zn0.3Cd0.7S nanoparticles ascertained from HRTEM images also play an important role for the emigration of electron. Our findings provide possibilities for the design and development of new Z-scheme photocatalysts for highly efficient hydrogen production.
机译:由于化石燃料的消耗和环境问题,对清洁可再生能源的需求正在增加。通过水分解生产光催化制氢是一种通过无碳技术满足全球能源需求的有前途的途径。迫切需要避免贵金属的替代光催化剂。在这里,我们制造了一种杂物结构,其中包括缺氧的WO3–x纳米棒和Zn0.3Cd0.7S纳米颗粒,用于高效的Z方案光催化系统。所得的异质结构在λ= 420 nm处的光催化H2析出速率为352.1μmolh -1 ,表观量子效率(AQY)为7.3%。经过5个小时的处理,光催化制氢量达到1746.8μmol,并且可重复。紫外可见漫反射光谱在可见光区域显示出强吸收性,这极大地促进了光催化性能。此外,电化学阻抗谱和光电流响应曲线建议的有效电荷分离表现出H2释放速率的增强。根据HRTEM图像确定,WO3-x纳米棒与Zn0.3Cd0.7S纳米颗粒之间的牢固界面接触对电子迁移也起着重要作用。我们的发现为高效生产氢气的新型Z型光催化剂的设计和开发提供了可能性。

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