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采用简单的一步微波水热法制备的 Bi₂O₃/Bi₂WO₆-xF₂x 异质结的光电活性。

Photoelectric activity of a Bi₂O₃/Bi₂WO₆-xF₂x heterojunction prepared by a simple one-step microwave hydrothermal method.

机构信息

Key Laboratory of Auxiliary Chemistry & Technology for Chemical Industry, Ministry of Education, Shaanxi University of Science & Technology , Xi'an 710021, China.

出版信息

ACS Appl Mater Interfaces. 2014 Dec 10;6(23):21041-50. doi: 10.1021/am505817h. Epub 2014 Nov 25.

Abstract

NH4F/Bi2WO6 powders were prepared by a simple one-step microwave hydrothermal method at different reaction temperatures, using Bi(NO3)3·5H2O and Na2WO4·2H2O as raw materials and NH4F as an additive agent. Their photoelectric activities were also investigated via the degradation of Rhodamine B (RhB). The results indicate that when the reaction temperature increases to 220 and 240 °C, the orthorhombic Bi2WO6 phase with space group Pca21 and cubic Bi2O3 phase with space group Pn3̅m appear. Raman spectroscopy, SEM, TEM, and XPS results also confirm the existence of a Bi2O3/Bi2WO6-xF2x heterojunction at higher temperature. Greater than 95% photodegradation of RhB under the exposure of simulated sunlight is achieved within 90 min with the Bi2O3/Bi2WO6-xF2x heterojunction prepared at 220 °C, which displays remarkably promoted photocatalytic activities. The electrochemical impedance spectra and photocurrent results also prove that efficient charge separation and better electron transport properties are achieved by the Bi2O3/Bi2WO6-xF2x heterojunction film prepared at 220 °C. In addition, the mechanism of the crystal growth and formation of the p-n junction between p-type Bi2O3 and n-type Bi2WO6 were also discussed.

摘要

NH4F/Bi2WO6 粉末通过在不同反应温度下使用 Bi(NO3)3·5H2O 和 Na2WO4·2H2O 作为原料和 NH4F 作为添加剂的简单一步微波水热法制备。还通过 Rhodamine B (RhB) 的降解研究了它们的光电活性。结果表明,当反应温度升高到 220 和 240°C 时,出现了具有空间群 Pca21 的正交 Bi2WO6 相和具有空间群 Pn3̅m 的立方 Bi2O3 相。拉曼光谱、SEM、TEM 和 XPS 结果也证实了在较高温度下存在 Bi2O3/Bi2WO6-xF2x 异质结。在模拟阳光下暴露 90 分钟内,在 220°C 下制备的 Bi2O3/Bi2WO6-xF2x 异质结可实现大于 95%的 RhB 光降解,显示出显著提高的光催化活性。电化学阻抗谱和光电流结果也证明了在 220°C 下制备的 Bi2O3/Bi2WO6-xF2x 异质结薄膜实现了有效的电荷分离和更好的电子传输性能。此外,还讨论了 p 型 Bi2O3 和 n 型 Bi2WO6 之间形成 p-n 结的晶体生长和形成机制。

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