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高效Z型FeO/g-C₃N₄复合材料上CO光还原为CH₄的研究

Photoreduction of CO to CH over Efficient Z-Scheme -FeO/g-CN Composites.

作者信息

Nguyen Thanh-Binh, Dinh Thi Thuy Hang, Pham Minh Doan, Bui Minh Hien, Nguyen Thi Ngoc Quynh, Nguyen Dinh Bang

机构信息

VNU University of Science, Hanoi, Vietnam.

Vietnam Maritime University, 484 Lach Tray, Hai Phong, Vietnam.

出版信息

J Anal Methods Chem. 2022 Apr 26;2022:1358437. doi: 10.1155/2022/1358437. eCollection 2022.

Abstract

A series of composite -FeO/g-CN (denoted as xFeCN with equal 5, 10, 15, and 20 of -FeO percentage in weight) was prepared by calcination and precipitation-impregnation methods. X-ray diffraction (XRD), Fourier transform infrared (FTIR), and X-ray photoelectron spectrometry (XPS) characterizations indicated the successful synthesis of Z-scheme FeCN composites. A red shift of the light absorption region was revealed by UV-vis diffuse reflectance spectroscopy (UV-DRS). In addition, photoluminescence spectroscopy (PL) spectra showed an interface interaction of two phases FeO and g-CN in the synthesized composites that improved the charge transfer capacity. The photocatalytic activity of these materials was studied in the photoreduction of CO with HO as the reductant in the gaseous phase. The composites exhibited excellent photoactivity compared to undoped g-CN. The CH production rate over 10FeCN and 15FeCN composites (2.8 × 10 and 2.9 × 10 mol h g, respectively) was 7 times higher than that over pristine g-CN (0.4 × 10 mol h g). This outstanding photocatalytic property of these composites was explained by the light absorption expansion and the prevention of photogenerated electron-hole pairs recombination due to its Z-scheme structure.

摘要

通过煅烧和沉淀-浸渍法制备了一系列复合-FeO/g-CN(表示为xFeCN,其中-FeO的重量百分比分别为5%、10%、15%和20%)。X射线衍射(XRD)、傅里叶变换红外光谱(FTIR)和X射线光电子能谱(XPS)表征表明成功合成了Z型FeCN复合材料。紫外可见漫反射光谱(UV-DRS)显示光吸收区域发生了红移。此外,光致发光光谱(PL)表明合成的复合材料中FeO和g-CN两相之间存在界面相互作用,提高了电荷转移能力。在以H₂O作为还原剂的气相中,研究了这些材料在光催化还原CO方面的活性。与未掺杂g-CN相比,这些复合材料表现出优异的光活性。10FeCN和15FeCN复合材料上的CH₄产率(分别为2.8×10⁻⁵和2.9×10⁻⁵mol h⁻¹g⁻¹)比原始g-CN(0.4×10⁻⁵mol h⁻¹g⁻¹)高7倍。这些复合材料出色的光催化性能归因于其光吸收范围的扩大以及由于Z型结构而防止光生电子-空穴对的复合。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d04/9072041/9d59d360ac3a/JAMC2022-1358437.001.jpg

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