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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Enhanced Visible-Light Photocatalytic H-2 Evolution in Cu2O/Cu2Se Multilayer Heterostructure Nanowires Having {111} Facets and Physical Mechanism
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Enhanced Visible-Light Photocatalytic H-2 Evolution in Cu2O/Cu2Se Multilayer Heterostructure Nanowires Having {111} Facets and Physical Mechanism

机译:Cu2O / Cu2Se多层异质结构纳米线的增强的可见光光催化H-2演化,具有{111}刻面和物理机制

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摘要

It is rather challenging to develop photocatalysts based on narrow band-gap semiconductors for water splitting under solar irradiation. Herein, we synthesized the Cu2O/Cu2Se multilayer heterostructure nanowires exposing {111} crystal facets by a hydrothermal reaction of Se with Cu and KBH4 in ethanol amine aqueous solution and subsequent annealing in air. The photocatalytic H-2 production activity of Cu2O/Cu2Se multilayer heterostructure nanowires is dramatically improved, with an increase on the texture coefficient of Cu2O(111) and Cu2Se(111) planes, and thus the exposed {111} facets may be the active surfaces for photocatalytic H-2 production. On the basis of the polar structure of Cu2O {111} and Cu2Se {111} surfaces, we presented a model of charge separation between the Cu-Cu2Se(111) and O-Cu2O((1) over bar (1) over bar (1) over bar) polar surfaces. An internal electric field is created between Cu Cu2Se(111) and O-Cu2O((1) over bar (1) over bar (1) over bar) polar surfaces, because of spontaneous polarization. As a result, this internal electric field drives the photocreated charge separation. The oxidation and reduction reactions selectively occur at the negative O-Cu2O((1) over bar (1) over bar (1) over bar) and the positive Cu Cu2Se(111) surfaces. The polar surface-engineering may be a general strategy for enhancing the photocatalytic H-2-production activity of semiconductor photocatalysts. The charge separation mechanism not only can deepen the understanding of photocatalytic H-2 production mechanism but also provides a novel insight into the design of advanced photocatalysts, other photoelectric devices, and solar cells.
机译:基于窄带间隙半导体开发光催化剂在太阳照射下的水分分裂方面是相当具有挑战性的。在此,我们通过在乙醇胺水溶液中用Cu和KbH 4的水热反应和随后的空气退火来合成Cu 2 O / Cu2Se多层异质结构纳米线暴露{111}晶面。 Cu2O / Cu2Se多层异质结构纳米线的光催化H-2产生活性,随着Cu2O(111)和Cu2Se(111)平面的质地系数的增加,因此暴露的{111}小平面可以是有源表面用于光催化H-2生产。基于Cu2O {111}和Cu2SE {111}表面的极性结构,我们在Cu-Cu2Se(111)和O-Cu2O((1)上方的杆(1)上方(1))呈现了电荷分离模型( 1)在条形上)极性表面。由于自发极化,在Cu Cu2Se(111)和O-1)上通过条(1)上方的条(1)上方(1)在杆(1)上方的杆(1)之间产生内部电场。结果,该内部电场驱动了光敏电荷分离。氧化和还原反应在负O-Cu 2 O((1)上方的棒(1)上方的棒(1)上方)和阳性Cu Cu 2Se(111)表面。极性表面工程可以是增强半导体光催化剂的光催化H-2-生产活性的一般策略。电荷分离机制不仅可以加深对光催化H-2生产机制的理解,还提供了对先进光催化剂,其他光电器件和太阳能电池设计的新颖洞察力。

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    Shaanxi Normal Univ Shaanxi Key Lab Adv Energy Devices Shaanxi Engn Lab Adv Energy Technol Sch Mat Sci &

    Engn Key Lab Macromol Sci Shaanxi P Xian 710119 Shaanxi Peoples R China;

    Shaanxi Normal Univ Sch Chem &

    Chem Engn Key Lab Macromol Sci Shaanxi Prov Xian 710119 Shaanxi Peoples R China;

    Shaanxi Normal Univ Sch Chem &

    Chem Engn Key Lab Macromol Sci Shaanxi Prov Xian 710119 Shaanxi Peoples R China;

    Shaanxi Normal Univ Sch Phys &

    Informat Technol Xian 710119 Shaanxi Peoples R China;

    Shaanxi Normal Univ Key Lab Appl Surface &

    Colloid Chem Natl Minist Educ Shaanxi Engn Lab Adv Energy Tech Sch Mat Sci &

    Engn Shaanxi Key Lab Adv Energy Dev Xian 710119 Shaanxi Peoples R China;

    Shaanxi Normal Univ Shaanxi Key Lab Adv Energy Devices Shaanxi Engn Lab Adv Energy Technol Sch Mat Sci &

    Engn Key Lab Macromol Sci Shaanxi P Xian 710119 Shaanxi Peoples R China;

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