首页> 外文期刊>CSI Transactions on ICT >A review on the sensing performances for three different ternary hybrid (Pd/RGO/TiO_2-NTs, Pd/RGO/MnO_2-NFs and Pd/RGO/ WO_3-NFs) gas sensor device structures
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A review on the sensing performances for three different ternary hybrid (Pd/RGO/TiO_2-NTs, Pd/RGO/MnO_2-NFs and Pd/RGO/ WO_3-NFs) gas sensor device structures

机译:关于三种不同三元杂种(PD / RGO / TiO_2-NTS,PD / RGO / MNO_2-NFS和PD / RGO / WO_3-NFS)气体传感器装置结构的检测性能综述

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Present paper aims to study the comparative analysis of the sensing performance between three fabricated metal oxide based ternary hybrid device structures [Pd/RGO/TiO_2-nanotubes (NTs), Pd/RGO/MnO_2 nanoflowers (NFs) and Pd/RGO/WO_3-nanoflowers (NFs)]. In each of the ternary structure, the oxide nanostructure play the role of basic sensing matrix where due to extremely high surface to volume ratio of the corresponding nanostructure, the availability of adsorption sites increases, which leads to increased sensitivity or response magnitude (%RM) of the sensor. On the contrary, RGO acts on a high mobility (~ 1600 cm~2/V-s) distributed connector among the neighbouring nanostructure leading towards improved response or recovery kinetics. Finally, Pd nanoparticles due to their catalytic activity (which reduces activation energy requirement for target species dissociation), bring forth as the substantial reduction in operating temperature. By employing those ternary hybrid structure sensing layers, room temperature (27 °C) alcohol sensing with a very high detection range (1-700 ppm) was achieved with appreciably fast response time (~ 12-20 s) and recovery time (~ 23-30 s) without compromising the response magnitude (80-98% at 700 ppm). Finally, a comparative analysis of the sensing performances for the above-mentioned three ternary hybrid gas sensors was illustrated.
机译:目前涉及研究三种制造金属氧化物三元杂交装置结​​构的感测性能的对比分析[Pd / Rgo / TiO_2-纳米管(NTS),Pd / Rgo / mnO_2纳米割草机(NFS)和Pd / Rgo / WO_3-纳米锤子(NFS)]。在每个三元结构中,氧化物纳米结构起到基本感测基质的作用,其中由于相应的纳米结构的极高表面与体积比,吸附点的可用性增加,这导致敏感性或响应幅度增加(%Rm)传感器。相反,RGO在邻近纳米结构中的高迁移率(〜1600cm〜2 / V-S)分布式连接器上,导致改善的响应或回收动力学。最后,Pd纳米粒子由于它们的催化活性(减少了靶物种解离的活化能量要求),因此随着工作温度的显着降低。通过采用这些三元杂化结构感测层,通过明显快​​速响应时间(〜12-20s)和恢复时间(〜23),实现了使用非常高的检测范围(1-700ppm)(1-700ppm)的室温(27℃)醇感测(〜23 -30 s)不影响响应幅度(700ppm的80-98%)。最后,示出了对上述三个三元杂交气体传感器的感测性能的对比分析。

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