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Stoichiometry, Length, and Wall Thickness Optimization of TiO2 Nanotube Array for Efficient Alcohol Sensing

机译:TiO2纳米管阵列的化学计量,长度和壁厚的优化,可实现高效的酒精感测

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The present study concerns development Of an efficient alcohol sensor by controlling the stoichiometry, length, and wall thickness of electrochemically grown TiO2 nanotube array for its use as the sensing layer, Judicious variation of H2O content (0, 2, 10 and 100% by volume) in the mixed electrolyte comprising ethylene glycol and NH4F resulted-into the desired variation Of stoichiometry. The sensor study was performed within the temperature range of 27 to 250 degrees C for detecting the alcohols in the concentration range of 10-1000 ppm. The nanotubes grown with the electrolyte containing 2 vol % H2O Offered the maximum response magnitude. For this stoichiometry, variation of, corresponding length (1.25-2.4 mu m) and wall thickness (19.8-9 nm) of the nanotubes was achieved by varying the anodization time (4-16 h) and temperatures (42-87 degrees C), respectively. While the variation of length influenced the sensing parameters insignificantly, the best response magnitude was achieved for similar to 13 run wall thickness. The underlying Sensing mechanism was correlated with the experimental findings on the basis of structural parameters of the nanotubes.
机译:本研究涉及通过控制电化学生长的TiO2纳米管阵列用作传感层的化学计量,长度和壁厚来开发高效酒精传感器,明智地改变H2O含量(0、2、10和100%体积) )在包含乙二醇和NH4F的混合电解质中产生所需的化学计量变化。在27至250摄氏度的温度范围内进行传感器研究,以检测10-1000 ppm浓度范围内的醇。用含有2%(体积)H2O的电解质生长的纳米管具有最大的响应强度。对于这种化学计量,通过改变阳极氧化时间(4-16小时)和温度(42-87摄氏度),可以改变纳米管的相应长度(1.25-2.4微米)和壁厚(19.8-9纳米)。 , 分别。虽然长度的变化对传感参数的影响不显着,但对于类似于13行程壁厚,仍可实现最佳响应幅度。基于纳米管的结构参数,潜在的传感机制与实验结果相关。

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