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首页> 外文期刊>Inorganic Chemistry: A Research Journal that Includes Bioinorganic, Catalytic, Organometallic, Solid-State, and Synthetic Chemistry and Reaction Dynamics >Ultrathin SnO2 Nanorods: Template- and Surfactant-Free Solution Phase Synthesis, Growth Mechanism, Optical, Gas-Sensing, and Surface Adsorption Properties
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Ultrathin SnO2 Nanorods: Template- and Surfactant-Free Solution Phase Synthesis, Growth Mechanism, Optical, Gas-Sensing, and Surface Adsorption Properties

机译:超薄SnO2纳米棒:无模板和无表面活性剂的溶液相合成,生长机理,光学,气体传感和表面吸附特性

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摘要

A novel template- and surfactant-free low temperature solution-phase method has been successfully developed for the controlled synthesis of ultrathin SnO2 single-crystalline nanorods for the first time. The ultrathin SnO2 single-crystalline nanorods are 2.0 +/- 0.5 nm in diameter, which is smaller than its exciton Bohr radius. The ultrathin SnO2 nanorods show a high specific area (191.5 m(2) g(-1)). Such a thin SnO2 single-crystalline nanorod is new in the family of SnO2 nanostrucures and presents a strong quantum confinement effect. Its formation depends on the reaction temperature as well as on the concentration of the urea solution. A nonclassical crystallization process, Ostwald ripening process followed by an oriented attachment mechanism, is proposed based on the detailed observations from a time-dependent crystal evolution process. Importantly, such structured SnO2 has shown a strong structure-induced enhancement of gas-sensing properties and has exhibited greatly enhanced gas-sensing property for the detection of ethanol than that of other structured SnO2, Such as the powders of nanobelts and microrods. Moreover, these ultrathin SnO2 nanorods exhibit excellent ability to remove organic pollutant in wastewater by enormous surface adsorption. These properties are mainly attributed to its higher surface-to-volume ratio and ultrathin diameter. This work provides a novel low temperature, green, and inexpensive pathway to the synthesis of ultrathin nanorods, offering a new material form for sensors, solar cells, catalysts, water treatments, and other applications.
机译:已成功开发了一种新型的无模板和无表面活性剂的低温固溶相方法,首次用于可控合成超薄SnO2单晶纳米棒。超薄的SnO2单晶纳米棒的直径为2.0 +/- 0.5 nm,小于其激子玻尔半径。超薄SnO2纳米棒显示出高比表面积(191.5 m(2)g(-1))。这种薄的SnO2单晶纳米棒是SnO2纳米结构家族中的新成员,具有很强的量子约束作用。其形成取决于反应温度以及尿素溶液的浓度。基于对随时间变化的晶体演化过程的详细观察,提出了一种非经典的结晶过程,即奥斯特瓦尔德熟化过程,然后是定向附着机制。重要的是,这种结构化的SnO2与其他结构化的SnO2(例如纳米带和微棒的粉末)相比,已显示出强大的结构诱导的气敏特性增强性能,并且在检测乙醇方面显示出大大增强的气敏特性。而且,这些超薄的SnO2纳米棒通过巨大的表面吸附表现出优异的去除废水中有机污染物的能力。这些性质主要归因于其较高的表面体积比和超薄直径。这项工作为合成超薄纳米棒提供了一种新颖,低温,绿色且廉价的途径,为传感器,太阳能电池,催化剂,水处理和其他应用提供了新的材料形式。

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