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Highly sensitive and selective volatile organic compound gas sensors based on mesoporous nanocomposite monoliths

机译:基于中孔纳米复合材料整体的高灵敏度和选择性的挥发性有机化合物气体传感器

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We introduce the use of highly ordered mesoporous silica/metal oxide (HOM/MO) nanocomposite monoliths for volatile organic compound (VOC) gas sensor applications. Monoliths with various loadings of semiconducting metal oxides (SnO2, ZnO, NiO, CuO, and Fe2O3) were prepared through instant direct-templating method. The dependence of the doping elements and doping levels on the mesoporous structure of monoliths was investigated. The results indicate that the monoliths retained their ordered porous structure at up to 40% doping by SnO2. The high-resolution transmission electron microscopy and scanning transmission electron microscopy images revealed that the SnO2 nanocrystals were homogenously distributed in the matrix of the HOM monoliths up to 40% doping concentration. The gas-sensing properties of the HOM/SnO2 and HOM/ZnO monoliths to acetone, benzene, and ethanol were also investigated. Sensors based on the HOM/SnO2 nanocomposites showed highest sensitivity, selectivity, response rate, and response stability to acetone compared with the others. This finding provides interesting results on the large-scale synthesis of HOM/MO monoliths with the ability to control pore structure and opens a new strategy in the application of mesoporous nanocomposites for gas sensors. In addition, various HOM/MO nanocomposite monoliths are easily synthesized through this method. It expands the potential of HOM/MO nanocomposite monoliths to other applications, such as catalysis and adsorption.
机译:我们介绍了在挥发性有机化合物(VOC)气体传感器应用中使用高度有序的介孔二氧化硅/金属氧化物(HOM / MO)纳米复合整料的方法。通过即时直接模板法制备了具有各种负载量的半导体金属氧化物(SnO2,ZnO,NiO,CuO和Fe2O3)的整料。研究了掺杂元素和掺杂水平对整料介孔结构的依赖性。结果表明,整体材料在SnO2的掺杂量高达40%时仍能保持其有序多孔结构。高分辨率透射电子显微镜和扫描透射电子显微镜图像显示,SnO2纳米晶体均匀地分布在HOM单块基质中,掺杂浓度最高为40%。还研究了HOM / SnO2和HOM / ZnO整料对丙酮,苯和乙醇的气敏特性。与其他传感器相比,基于HOM / SnO2纳米复合材料的传感器显示出最高的灵敏度,选择性,响应速度和对丙酮的响应稳定性。这一发现为大规模合成具有控制孔结构能力的HOM / MO整体材料提供了有趣的结果,并为介孔纳米复合材料在气体传感器中的应用开辟了新的策略。另外,通过该方法容易合成各种HOM / MO纳米复合整料。它将HOM / MO纳米复合材料整体材料的潜力扩展到其他应用,例如催化和吸附。

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