Enhanced sensitivity of Au@Bi2WO6 flower-like materials to formaldehyde

IF 4.703 3区 材料科学 Nanoscale Research Letters Pub Date : 2023-11-13 DOI:10.1186/s11671-023-03923-4
Ruifeng Zhang, Lei Liu, Weiye Yang, Yao Liu, Yingkai Liu
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Abstract

Bi2WO6 flower-like materials (FMs) were prepared by a hydrothermal method, followed by an in-situ reduction method to prepare Au@Bi2WO6 FMs. X-ray diffraction, scanning electron microscopy, transmission electron microscopy, high-resolution transmission electron microscopy, and X-ray photoelectron spectroscopy were employed to characterize the samples. It was discovered that the calculated OV content of Au@Bi2WO6 FMs is 25.16% whereas that of Bi2WO6 FMs is 20.81%, offering appropriate active sites for the absorption of gases and thus enhancing outstanding sensing property. Moreover, the detection of volatile and hazardous substances such as formaldehyde, methanol, acetone, benzene, toluene, and xylene was carried out to assess the efficacy of the Au@Bi2WO6 FMs sensors. The optimal operating temperatures for the Bi2WO6 FMs and Au@Bi2WO6 FMs sensors were 290 and 260 °C, respectively. Compared with Au@Bi2WO6 FMs sensor and Bi2WO6 FMs one, the best response of the front was 250 (900)–100 (800) ppm formaldehyde whereas that of the latter was 90 (230). Therefore, Au@ Bi2WO6 FMs have good response and selectivity, which are promising candidates for formaldehyde detection.

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提高Au@Bi2WO6花状材料对甲醛的敏感性。
采用水热法制备Bi2WO6花状材料(FMs),再采用原位还原法制备Au@Bi2WO6花状材料。采用x射线衍射、扫描电镜、透射电镜、高分辨率透射电镜和x射线光电子能谱对样品进行表征。研究发现,Au@Bi2WO6分子式的OV含量为25.16%,而Bi2WO6分子式的OV含量为20.81%,为气体的吸收提供了合适的活性位点,从而提高了优异的传感性能。此外,还对甲醛、甲醇、丙酮、苯、甲苯和二甲苯等挥发性有害物质进行了检测,以评估Au@Bi2WO6 FMs传感器的功效。Bi2WO6 FMs和Au@Bi2WO6 FMs传感器的最佳工作温度分别为290℃和260℃。与Au@Bi2WO6 FMs传感器和Bi2WO6 FMs传感器相比,前者的最佳响应为250 (900)~ 100 (800)ppm甲醛,后者的最佳响应为90 (230)ppm甲醛。因此,Au@ Bi2WO6 FMs具有良好的响应性和选择性,是很有前途的甲醛检测候选材料。
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来源期刊
Nanoscale Research Letters
Nanoscale Research Letters NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
15.00
自引率
0.00%
发文量
110
审稿时长
2.5 months
期刊介绍: Nanoscale Research Letters (NRL) provides an interdisciplinary forum for communication of scientific and technological advances in the creation and use of objects at the nanometer scale. NRL is the first nanotechnology journal from a major publisher to be published with Open Access.
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