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Porous Iron Molybdate Nanorods: In situ Diffusion Synthesis and Low-Temperature H2S Gas Sensing

机译:多孔钼酸铁纳米棒:原位扩散合成和低温H2S气敏

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摘要

In the paper, we developed an in situ diffusion growth method to fabricate porous Fe2(MoO4)3 nanorods. The average diameter and the length of the porous nanorods were 200 nm and 1.2-4 //m, respectively. Moreover, many micropores existed along axial direction of the Fe2(MoO4)3 nanorods. In terms of nitrogen adsorption-desorption isotherms, calculated pore size was in the range of 4-115 nm, agreeing well with the transmission electron microscope observations. Because of the uniquely porous characteristics and catalytic ability at low temperatures, the porous Fe2(MoO4)3 nanorods exhibited very good H2S sensing properties, including high sensitivity at a low working temperature (80 °C), relatively fast response and recovery times, good selectivity, and long-term stability. Thus, the porous Fe2(MoO4)3 nanorods are very promising for the fabrication of high-performance H2S gas sensors. Furthermore, the strategy presented here could be expended as a general method to synthesize other hollow/porous-type transition metal molybdate nanostructures by rational designation in nanoscale.
机译:在本文中,我们开发了一种原位扩散生长方法来制造多孔Fe2(MoO4)3纳米棒。多孔纳米棒的平均直径和长度分别为200nm和1.2-4 / m。而且,沿着Fe 2(MoO 4)3纳米棒的轴向存在许多微孔。就氮吸附-解吸等温线而言,计算的孔径在4-115 nm范围内,与透射电子显微镜的观察结果非常吻合。由于独特的多孔特性和在低温下的催化能力,多孔的Fe2(MoO4)3纳米棒表现出非常好的H2S传感性能,包括在低工作温度(80°C)下的高灵敏度,相对快的响应和恢复时间,选择性和长期稳定性。因此,多孔Fe2(MoO4)3纳米棒对于高性能H2S气体传感器的制造非常有前途。此外,这里提出的策略可以扩展为通过合理指定纳米级来合成其他空心/多孔型过渡金属钼酸盐纳米结构的一般方法。

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