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2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol

Two dimensional (2D)SnO(2) nanosheets were synthesized by a substrate-free hydrothermal route using sodium stannate and sodium hydroxide in a mixed solvent of absolute ethanol and deionized water at a lower temperature of 130 °C. The characterization results of the morphology, microstructure, and su...

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Autores principales: Wan, Wenjin, Li, Yuehua, Ren, Xingping, Zhao, Yinping, Gao, Fan, Zhao, Heyun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5853743/
https://www.ncbi.nlm.nih.gov/pubmed/29462938
http://dx.doi.org/10.3390/nano8020112
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author Wan, Wenjin
Li, Yuehua
Ren, Xingping
Zhao, Yinping
Gao, Fan
Zhao, Heyun
author_facet Wan, Wenjin
Li, Yuehua
Ren, Xingping
Zhao, Yinping
Gao, Fan
Zhao, Heyun
author_sort Wan, Wenjin
collection PubMed
description Two dimensional (2D)SnO(2) nanosheets were synthesized by a substrate-free hydrothermal route using sodium stannate and sodium hydroxide in a mixed solvent of absolute ethanol and deionized water at a lower temperature of 130 °C. The characterization results of the morphology, microstructure, and surface properties of the as-prepared products demonstrated that SnO(2) nanosheets with a tetragonal rutile structure, were composed of oriented SnO(2) nanoparticles with a diameter of 6–12 nm. The X-ray diffraction (XRD) and high-resolution transmission electron microscope (FETEM) results demonstrated that the dominant exposed surface of the SnO(2) nanoparticles was (101), but not (110). The growth and formation was supposed to follow the oriented attachment mechanism. The SnO(2) nanosheets exhibited an excellent sensing response toward ethylene glycol at a lower optimal operating voltage of 3.4 V. The response to 400 ppm ethylene glycol reaches 395 at 3.4 V. Even under the low concentration of 5, 10, and 20 ppm, the sensor exhibited a high response of 6.9, 7.8, and 12.0 to ethylene glycol, respectively. The response of the SnO(2) nanosheets exhibited a linear dependence on the ethylene glycol concentration from 5 to 1000 ppm. The excellent sensing performance was attributed to the present SnO(2) nanoparticles with small size close to the Debye length, the larger specific surface, the high-energy exposed facets of the (101) surface, and the synergistic effects of the SnO(2) nanoparticles of the nanosheets.
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spelling pubmed-58537432018-03-16 2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol Wan, Wenjin Li, Yuehua Ren, Xingping Zhao, Yinping Gao, Fan Zhao, Heyun Nanomaterials (Basel) Article Two dimensional (2D)SnO(2) nanosheets were synthesized by a substrate-free hydrothermal route using sodium stannate and sodium hydroxide in a mixed solvent of absolute ethanol and deionized water at a lower temperature of 130 °C. The characterization results of the morphology, microstructure, and surface properties of the as-prepared products demonstrated that SnO(2) nanosheets with a tetragonal rutile structure, were composed of oriented SnO(2) nanoparticles with a diameter of 6–12 nm. The X-ray diffraction (XRD) and high-resolution transmission electron microscope (FETEM) results demonstrated that the dominant exposed surface of the SnO(2) nanoparticles was (101), but not (110). The growth and formation was supposed to follow the oriented attachment mechanism. The SnO(2) nanosheets exhibited an excellent sensing response toward ethylene glycol at a lower optimal operating voltage of 3.4 V. The response to 400 ppm ethylene glycol reaches 395 at 3.4 V. Even under the low concentration of 5, 10, and 20 ppm, the sensor exhibited a high response of 6.9, 7.8, and 12.0 to ethylene glycol, respectively. The response of the SnO(2) nanosheets exhibited a linear dependence on the ethylene glycol concentration from 5 to 1000 ppm. The excellent sensing performance was attributed to the present SnO(2) nanoparticles with small size close to the Debye length, the larger specific surface, the high-energy exposed facets of the (101) surface, and the synergistic effects of the SnO(2) nanoparticles of the nanosheets. MDPI 2018-02-16 /pmc/articles/PMC5853743/ /pubmed/29462938 http://dx.doi.org/10.3390/nano8020112 Text en © 2018 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Wan, Wenjin
Li, Yuehua
Ren, Xingping
Zhao, Yinping
Gao, Fan
Zhao, Heyun
2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol
title 2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol
title_full 2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol
title_fullStr 2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol
title_full_unstemmed 2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol
title_short 2D SnO(2) Nanosheets: Synthesis, Characterization, Structures, and Excellent Sensing Performance to Ethylene Glycol
title_sort 2d sno(2) nanosheets: synthesis, characterization, structures, and excellent sensing performance to ethylene glycol
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5853743/
https://www.ncbi.nlm.nih.gov/pubmed/29462938
http://dx.doi.org/10.3390/nano8020112
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