In this work, SnO nanoflowers were prepared by a simple one-step hydrothermal process. The morphology and structure of SnO nanoflowers were characterized by SEM, TEM, Raman spectroscopy, and XRD, which demonstrated the good crystallinity of the SnO tetrahedron structure of the as-synthesized materials. In addition, the sensing properties of SnO nanoflowers were studied in detail. It was found that the SnO nanoflower-based gas sensor exhibits excellent gas response (9.2 to 120 ppm), fast response and recovery (2/15 s to 6 ppm), good linearity of correlation between response () vs. concentration () (lg = 0.505 lg - 0.147, R = 0.9863), superb repeatability, and selectivity at 300 °C. The outstanding performance can also be attributed to the high specific surface area ratio and size of SnO nanoflowers close to the thickness of the electron depletion layer that can provide abundant active sites, promote the rate of interaction, and make it easier for gas molecules to diffuse into the interior of the material. Therefore, SnO nanoflowers can be an ideal sensing material for real-time monitoring of low-concentration HCHO.
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http://dx.doi.org/10.3390/nano12132133 | DOI Listing |
J Colloid Interface Sci
December 2024
College of Materials Science and Chemical Engineering, Harbin 150001, PR China; College of Physics and Optoelectronic Engineering, Harbin Engineering University, Harbin 150001, PR China. Electronic address:
The electrochemical carbon dioxide reduction reaction (CORR) to formic acid or formate is a highly effective approach for achieving carbon neutrality. However, multiple proton-coupling-electronic processes and the instability of the catalysts caused by surface poisoning greatly limit the overall efficiency of CORR to formate. Here, a facile method was developed to anchor ∼2.
View Article and Find Full Text PDFResearch on energy storage devices has focused on improving asymmetric supercapacitors (ASCs) by utilizing two different electrode materials. In this work, we have successfully prepared a unique material, ZnO/SnO nanoflower, the hydrothermal method. Graphene oxide (GO) was synthesized by applying the modified Hummers' technique.
View Article and Find Full Text PDFSci Rep
September 2024
Semiconductor Research Lab, Department of Physics, Gurukula Kangri (Deemed University), Haridwar, India.
Inorg Chem
June 2024
Information Materials and Intelligent Sensing Laboratory of Anhui Province, Institutes of Physical Science and Information Technology, Anhui University, Hefei 230601, P. R. China.
Ethanethiol (EtSH), being highly toxic, flammable, and explosive, poses significant risks to human health and safety and is capable of causing fires and explosions. Room-temperature detection using chemiresistive gas sensors is essential for managing these risks. However, the gas-sensing performance of conventional metal-oxide sensing materials may be limited by their weak interaction with EtSH at room temperature.
View Article and Find Full Text PDFChemosphere
May 2024
Key Laboratory of High-efficiency Utilization of Coal and Green Chemical Engineering, College of Chemistry and Chemical Engineering, Faculty of Frontier Science and Technology, Ningxia University, Yinchuan, 750021, PR China. Electronic address:
Ceftazidime (CAZ) is an emerging organic pollutant with a long-lasting presence in the environment. Although some PbO materials exhibit degradation capabilities, inefficient electron transport in the substrate layer and the problem of electrode stability still limit their use. Here, an interfacial design in which TiO nanotube arrays generate Ti self-doping oxide substrate layers and highly active 3D Sb-SnO nanoflowers-like interlayers was used to prepare PbO anodes for efficient degradation of CAZ.
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