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首页> 外文期刊>Journal of Materials Chemistry, C. materials for optical and electronic devices >A highly stable, selective, and high-performance VOC sensor using a SnS2 nano-lotus structure
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A highly stable, selective, and high-performance VOC sensor using a SnS2 nano-lotus structure

机译:使用SNS2纳米莲花结构的高度稳定,选择性和高性能的VOC传感器

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This research demonstrates the design and development of a novel SnS2 nano-lotus structure (NLS) using a one-step eco-friendly solvothermal method which can detect volatile organic compounds (VOCs) and involves a 3-S approach, i.e., obtaining stability, sensitivity, and selectivity. As a unique feature, the UV-visible spectroscopy results showed an optical band gap of 2.25 eV and Urbach energy states at 630, 675, 751, and 793 meV. Thus, a gas sensing mechanism that is correlated with the optical band gap and Urbach energy states of SnS2 NLS, leading to selectivity with reference to a targeted VOC, is discussed in this research. This SnS2 NLS sensor demonstrates the highest response (sensitivity) of 93.5% to 25 ppm ethanol at 90 degrees C, compared with its responses to methanol (16.6%), propanol (14.8%), and n-butanol (11.4%). The SnS2 NLS sensor for ethanol shows rapid response (14.2 s) and quick recovery (16.6 s) times toward a concentration of 25 ppm at 90 degrees C. The SnS2 NLS sensor demonstrates better selectivity towards ethanol, with the response of 92.9% being much higher compared to its responses to other interfering gases, such as methanol (16.4%), propanol (14.8%), n-butanol (11.4%), benzene (4.1%), toluene (5.8%), and n-butylacetate (2.2%). The value of the selectivity coefficient with respect to n-butylacetate is high, 34.5, which indicates that the SnS2 NLS sensor response to ethanol is 34.5 times higher than the response to n-butylacetate. However, the value of the selectivity coefficient towards methanol is low, 4.3, which shows that the SnS2 NLS sensor response to ethanol is only 4.3 times higher than the response to methanol. In addition to selectivity, the SnS2 NLS sensor displays outstanding stability, with a response of 91.3% after 25 days (tested at 5 day intervals) to a concentration of 25 ppm ethanol at 90 degrees C. The SnS2 NLS sensor exhibits a theoretical detection limit of 7.9 ppb toward ethanol at 90 degrees C. Taking the sensing outcomes into consideration, the unique SnS2 NLS VOC sensor with tunable performance can be projected to act as an analytical tool to detect a category of VOCs efficiently.
机译:本研究展示了一种新型SnS2纳米莲花结构(NLS)的设计和开发,该结构采用一步环保溶剂热法,可检测挥发性有机化合物(VOCs),并涉及3-S方法,即获得稳定性、灵敏度和选择性。作为一个独特的特征,紫外-可见光谱结果显示,在630、675、751和793 meV下,光学带隙为2.25 eV,Urbach能态。因此,本研究中讨论了一种与SnS2 NLS的光学带隙和Urbach能态相关的气体传感机制,该机制可导致针对目标VOC的选择性。与甲醇(16.6%)、丙醇(14.8%)和正丁醇(11.4%)相比,这种SnS2 NLS传感器在90℃下对25 ppm乙醇的响应(灵敏度)最高,为93.5%。用于乙醇的SnS2 NLS传感器在90℃下对25 ppm的浓度显示出快速响应(14.2 s)和快速恢复(16.6 s)倍。SnS2 NLS传感器对乙醇表现出更好的选择性,其92.9%的响应远高于对其他干扰气体的响应,例如甲醇(16.4%)、丙醇(14.8%)、正丁醇(11.4%)、苯(4.1%),甲苯(5.8%)和乙酸正丁酯(2.2%)。与乙酸正丁酯相关的选择性系数高达34.5,这表明SnS2 NLS传感器对乙醇的响应比对乙酸正丁酯的响应高34.5倍。然而,对甲醇的选择性系数较低,为4.3,这表明SnS2 NLS传感器对乙醇的响应仅比对甲醇的响应高4.3倍。除选择性外,SnS2 NLS传感器还表现出出色的稳定性,在90℃下25天(每隔5天测试一次)对25 ppm乙醇浓度的响应为91.3%。SnS2 NLS传感器在90℃下对乙醇的理论检测限为7.9 ppb。考虑到传感结果,独特的SnS2 NLS VOC传感器具有可调性能,可作为有效检测一类VOC的分析工具。

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