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Influence of Temperature on Reducing Gas Sensing Performance of Nanocrystalline Zinc Ferrite

机译:温度对纳米晶锌铁氧体还原气敏性能的影响

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Pure phase, zinc ferrite (ZnFe2O4) nanoparticles were synthesized at lower temperature (80 °C) by auto combustion synthesis method. The resulting ‘as synthesized’ powder was heat treated (HT) at 560 °C for 2 h in air atmosphere. As-synthesized particles had sizes ~10 nm with spherical shape. Further, these spherically shaped nanoparticles tended to change their morphology to hexagonal plate shape with increasing HT temperature. The band gap of the ‘as synthesized’ and HT zinc ferite, as determined by using UV–Vis spectroscopy were found to be 1.92 and 1.86 eV respectively. Gas responses of the ZnFe2O4 nanoparticles were measured by exposing them to ethanol gas vapors. It was found that the zinc ferrite nanoparticles exhibited various sensing responses to ethanol gas at different operating temperature. The best sensitivity was observed at low temperature for ‘as synthesized’ ferrite nanoparticles than HT zinc ferrite nanoparticles. Sensing material that had smaller particle size and larger specific surface area was observed to have larger gas sensitivity and vice-versa.
机译:通过自动燃烧合成方法在较低温度(80°C)下合成了纯相铁氧体锌(ZnFe2O4)纳米颗粒。将所得的“合成后”粉末在空气中于560°C热处理(HT)2小时。合成后的颗粒尺寸约为10纳米,呈球形。此外,这些球形纳米颗粒倾向于随着HT温度升高而将其形态改变为六边形板状。通过紫外-可见光谱法确定的“合成”和HT铁氧体的带隙分别为1.92和1.86 eV。通过将ZnFe2O4纳米颗粒暴露于乙醇气体蒸汽中,测量其气体响应。发现在不同的工作温度下,铁氧体锌纳米颗粒表现出对乙醇气体的各种传感响应。在低温下,“合成”的铁氧体纳米粒子比HT锌铁氧体纳米粒子的灵敏度最高。观察到具有较小粒径和较大比表面积的传感材料具有较大的气体敏感性,反之亦然。

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