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Synthesis, Characterization, and Gas Sensing Properties of Pure and Mn-doped ZnO Nanocrystalline Particles

机译:纯锰掺杂ZnO纳米晶颗粒的合成,表征和气敏性能

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摘要

Nanocrystalline ZnO and Mn (1 wt.%)-doped ZnO particles have been synthesized via reverse micelle method. The structural, particulate, and optical properties of the synthesized nanoparticles have been studied by XRD, TEM, UV-Vis, and PL spectroscopy. The obtained data indicate the synthesis of the pure nanoparticles structure with wurtzite structure, average particle size of 18-21 nm, and high optical quality. Gas sensing properties of the nanocrystalline ZnO and Mn-doped ZnO particles toward gasoline and ethanol vapors have been investigated at different temperatures and concentrations. The results show that the optimum working temperature of the gas sensors based on ZnO and Mn-doped ZnO particles are about 633 and 620 K toward ethanol vapor and about 560 and 608 K toward gasoline vapor, respectively. Based on the results, although Mn impurities reduce the sensitivity of the ZnO gas sensor, they cause sensor to saturate at much higher gas concentration.
机译:通过反胶束法合成了纳米晶ZnO和Mn(1 wt。%)掺杂的ZnO颗粒。已经通过XRD,TEM,UV-Vis和PL光谱研究了合成的纳米颗粒的结构,颗粒和光学性质。所获得的数据表明具有纤锌矿结构,平均粒径为18-21 nm和高光学质量的纯纳米颗粒结构的合成。已经研究了在不同温度和浓度下,纳米晶体ZnO和Mn掺杂的ZnO颗粒对汽油和乙醇蒸气的气敏特性。结果表明,基于ZnO和Mn掺杂的ZnO颗粒的气体传感器的最佳工作温度分别为朝向乙醇蒸气的大约633和620 K,向汽油蒸气的大约560和608K。根据结果​​,尽管Mn杂质会降低ZnO气体传感器的灵敏度,但它们会导致传感器在更高的气体浓度下饱和。

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