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首页> 外文期刊>ACS applied materials & interfaces >A Facile and Green Approach for the Controlled Synthesis of Porous SnO2 Nanospheres: Application as an Efficient Photocatalyst and an Excellent Gas Sensing Material
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A Facile and Green Approach for the Controlled Synthesis of Porous SnO2 Nanospheres: Application as an Efficient Photocatalyst and an Excellent Gas Sensing Material

机译:一种可控的多孔SnO2纳米球合成的绿色方法:作为高效的光催化剂和优异的气敏材料

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摘要

A facile and elegant methodology invoking the principles of Green Chemistry for the synthesis of porous tin dioxide nanospheres has been described. The low-temperature (~50 °C) synthesis of SnO2 nanoparticles and their self-assembly into organized, uniform, and monodispersed porous nanospheres with high surface area is facilitated by controlling the concentration of glucose, which acts as a stabilizing as well as structure-directing agent. A systematic control on the stannate to glucose molar concentration ratio determines the exact conditions to obtain monodispersed nanospheres, preferentially over random aggregation. Detailed characterization of the structure, morphology, and chemical composition reveals that the synthesized material, 50 nm SnO2 porous nanospheres possess BET surface area of about 160 Each porous nanosphere consists of a few hundred nanoparticles ~2-3 nm in diameter with tetragonal cassiterite crystal structure. The SnO2 nanospheres exhibit elevated photocatalytic activity toward methyl orange with good recyclability. Because of the high activity and stability of this photocatalyst, the material is ideal for applications in environmental remediation. Moreover, SnO2 nanospheres display excellent gas sensing capabilities toward hydrogen. Surface modification of the nanospheres with Pd transforms this sensing material into a highly sensitive and selective room-temperature hydrogen sensor.
机译:描述了一种引用绿色化学原理合成多孔二氧化锡纳米球的简便方法。通过控制葡萄糖的浓度促进了SnO2纳米粒子的低温(〜50°C)合成及其自组装成具有高表面积的有组织,均匀和单分散的多孔纳米球的作用,它既起到稳定作用,又起到结构作用导演。对锡酸与葡萄糖摩尔浓度比的系统控制确定了获得单分散纳米球的确切条件,优先于随机聚集。对结构,形态和化学组成的详细表征表明,合成材料50 nm SnO2多孔纳米球的BET表面积约为160。每个多孔纳米球由几百个直径约2-3 nm的纳米颗粒组成,具有四方锡铁矿晶体结构。 。 SnO2纳米球对甲基橙表现出提高的光催化活性,并具有良好的可回收性。由于这种光催化剂的高活性和稳定性,该材料非常适合用于环境修复。此外,SnO2纳米球对氢气显示出出色的气体感应能力。用Pd对纳米球进行表面修饰,可将这种传感材料转变为高度敏感和选择性的室温氢传感器。

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