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Tube-Like Ternary α-Fe2O3@SnO2@Cu2O Sandwich Heterostructures: Synthesis and Enhanced Photocatalytic Properties

机译:管状三元α-Fe2O3@ SnO2 @ Cu2O三明治异质结构:合成和增强的光催化性能

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Heterogeneous photocatalysis is of great interest for environmental remediation applications. However, fast recombination of photogenerated electron—hole pair and a low utilization rate of sunlight hinder the commercialization of currently available semiconductor photocatalysts. In this regard, we developed a unique ternary single core-double shell heterostructure that consists of α-Fe2O3@SnO2@ Cu2O. This heterostracture exhibits a tube-like morphology possessing broad spectral response for the sunlight due to the combination of narrow bandgap and wide bandgap semiconductors forming a p—n heterojunction. To fabricate such a short nanotube (SNT), we used an anion-assisted hydrothermal route for deposition of α-Fe2O3, a seed-mediated deposition strategy for SnO2, and finally an aging process to deposit a Cu2O layer to complete the tube-like ternary α-Fe2O3@SnO2@ Cu2O single core-double shell heterostructures. The morphology, composition, and photocatalytic properties of those ternary core—shell—shell heterostructures were characterized by various analytical techniques. These ternary heterostructures exhibited enhanced photocatalytic properties on the photodegradation of the organic dye of Rhodamine B (RhB) under simulated sunlight irradiation. The origin of enhanced photocatalytic activity is due to the synergistic effect of broad spectral response by combining narrow bandgap and wide bandgap semiconductors and, hence, an efficient charge separation of photogenerated electron—hole pairs facilitated through the p—n heterojunction. Furthermore, our unique structure provides an insight on the fabrication and controlled preparation of multilayer heterostructural photocatalysts that have intriguing properties.
机译:非均相光催化对于环境修复应用非常感兴趣。然而,光生电子-空穴对的快速复合和低太阳光利用率阻碍了目前可用的半导体光催化剂的商业化。在这方面,我们开发了一种独特的由α-Fe2O3@ SnO2 @ Cu2O组成的三元单核-双壳异质结构。由于窄带隙和形成PN异质结的宽带隙半导体的结合,这种异质结构呈现出对日光具有宽光谱响应的管状形态。为了制造这种短的纳米管(SNT),我们使用了阴离子辅助的水热法来沉积α-Fe2O3,采用种子介导的SnO2沉积策略,最后进行了老化过程以沉积Cu2O层以完成管状结构。三元α-Fe2O3@ SnO2 @ Cu2O单核-双壳异质结构。这些三元核-壳-壳异质结构的形态,组成和光催化性能通过各种分析技术进行了表征。这些三元异质结构在模拟的日光照射下对罗丹明B(RhB)的有机染料的光降解表现出增强的光催化性能。光催化活性增强的起源是由于窄带隙半导体和宽带隙半导体的结合产生了宽光谱响应的协同效应,因此,通过PN异质结促进了光生电子-空穴对的有效电荷分离。此外,我们独特的结构提供了具有吸引力特性的多层异质结构光催化剂的制备和可控制备的见解。

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