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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Controllable synthesis of recyclable core-shell γ-Fe2O3@SnO2 hollow nanoparticles with enhanced photocatalytic and gas sensing properties
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Controllable synthesis of recyclable core-shell γ-Fe2O3@SnO2 hollow nanoparticles with enhanced photocatalytic and gas sensing properties

机译:具有增强的光催化和气敏特性的可回收核-壳型γ-Fe2O3@ SnO2空心纳米粒子的可控合成

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摘要

Composite materials containing different components with well-defined structures may cooperatively enhance their performance and extend their applications. In this work, core-shell γ-Fe2O3@SnO2 hollow nanoparticles (NPs) were synthesized by a low-cost and environmentally friendly seed-mediated hydrothermal method. Firstly, the γ-Fe2O3 hollow NPs were synthesized by a template-free method. Then they were used as the cores for the growth of SnO2 shells. The thickness of the shell can be simply tailored by controlling the reaction time. Various techniques, including SEM, XRD, TEM and HRTEM, were employed to investigate the morphology, structure and formation process of the special core-shell hollow structures. The combination of magnetic semiconductor (γ-Fe2O3) and wide band-gap semiconductor (SnO2) endowed them with great potential to be used as recyclable photocatalysts. Experiments on photo-degradation of Rhodamin B (RhB) dye in the presence of the samples showed that the hybrid structures possessed higher photocatalytic activities than the monomer structures of SnO2 and γ-Fe2O3 materials indicating a strong coupling enhancement effect between the wide and narrow band-gap semiconductors. Moreover, the gas sensing tests of the γ-Fe2O3@SnO2 hollow NPs revealed that the samples exhibited fast response and recovery rates, which enable them to be promising materials for gas sensors.
机译:包含具有明确结构的不同成分的复合材料可以协同提高其性能并扩展其应用。在这项工作中,通过低成本和环境友好的种子介导的水热法合成了核-壳γ-Fe2O3@ SnO2空心纳米粒子(NPs)。首先,采用无模板法合成了γ-Fe2O3空心NP。然后将它们用作SnO2壳生长的核心。通过控制反应时间可以简单地调整壳的厚度。利用SEM,XRD,TEM和HRTEM等多种技术研究了特殊核壳空心结构的形貌,结构和形成过程。磁性半导体(γ-Fe2O3)和宽带隙半导体(SnO2)的组合赋予了它们巨大的潜力,可用作可回收的光催化剂。在样品存在下对RhoBmin B(RhB)染料进行光降解的实验表明,杂化结构比SnO2和γ-Fe2O3材料的单体结构具有更高的光催化活性,表明宽和窄带之间的耦合增强作用强间隙半导体。此外,对γ-Fe2O3@ SnO2空心NP的气体传感测试表明,样品表现出快速的响应和回收率,这使其成为有前途的气体传感器材料。

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