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首页> 外文期刊>ACS Omega >Designing SnO2 Nanostructure-Based Sensors with Tailored Selectivity toward Propanol and Ethanol Vapors
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Designing SnO2 Nanostructure-Based Sensors with Tailored Selectivity toward Propanol and Ethanol Vapors

机译:设计对丙醇和乙醇蒸气具有选择性的基于SnO2纳米结构的传感器

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The application of metal oxide-based sensors for the detection of volatile organic compounds is restricted because of their high operating temperatures and poor gas sensing selectivity. Driven by this fact, we report the low operating temperature and high performance of C3H7OH and C2H5OH sensors. The sensors comprising SnO2 hollow spheres, nanoparticles, nanorods, and fishbones with tunable morphologies were synthesized with a simple hydrothermal one-pot method. The SnO2 hollow spheres demonstrated the highest sensing response (resistance ratio of 20) toward C3H7OH at low operating temperatures (75 °C) compared to other tested interference vapors and gases, such as C3H5O, C2H5OH, CO, NH3, CH4, and NO2. This improved response can be associated with the higher surface area and intrinsic point defects. At a higher operating temperature of 150 °C, a response of 28 was witnessed for SnO2 nanorods. A response of 59 was observed for SnO2 nanoparticle-based sensor toward C2H5OH at 150 °C. This variation in the optimal temperature with respect to variations in the sensor morphology implies that the vapor selectivity and sensitivity are morphology-dependent. The relation between the intrinsic sensing performance and vapor selectivity originated from the nonstoichiometry of SnO2, which resulted in excess oxygen vacancies (VO) and higher surface areas. This characteristic played a vital role in the enhancement of the target gas absorptivity and the charge transfer capability of SnO2 hollow sphere-based sensor.
机译:由于金属氧化物基传感器的高工作温度和较差的气体传感选择性,因此其在检测挥发性有机化合物中的应用受到限制。基于这一事实,我们报告了C3H7OH和C2H5OH传感器的低工作温度和高性能。用简单的水热一锅法合成了SnO2空心球,纳米颗粒,纳米棒和鱼骨形的传感器。与其他经过测试的干扰蒸气和气体(例如C3H5O,C2H5OH,CO,NH3,CH4和NO2)相比,SnO2空心球在低工作温度(75°C)下对C3H7OH表现出最高的感应响应(电阻比为20)。这种改善的响应可能与较高的表面积和本征点缺陷有关。在150°C的更高工作温度下,SnO2纳米棒的响应为28。在150°C下,基于SnO2纳米颗粒的传感器对C2H5OH的响应为59。相对于传感器形态变化的最佳温度变化表明,蒸气选择性和灵敏度与形态有关。本征感测性能与蒸汽选择性之间的关系源于SnO2的非化学计量,这导致过量的氧空位(VO)和较高的表面积。该特性在提高目标气体吸收率和SnO2中空球基传感器的电荷转移能力方面起着至关重要的作用。

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