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Analytical Calculation of Sensing Parameters on Carbon Nanotube Based Gas Sensors

机译:碳纳米管基气体传感器传感参数的解析计算

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Carbon Nanotubes (CNTs) are generally nano-scale tubes comprising a network of carbon atoms in a cylindrical setting that compared with silicon counterparts present outstanding characteristics such as high mechanical strength, high sensing capability and large surface-to-volume ratio. These characteristics, in addition to the fact that CNTs experience changes in their electrical conductance when exposed to different gases, make them appropriate candidates for use in sensing/measuring applications such as gas detection devices. In this research, a model for a Field Effect Transistor (FET)-based structure has been developed as a platform for a gas detection sensor in which the CNT conductance change resulting from the chemical reaction between NH3 and CNT has been employed to model the sensing mechanism with proposed sensing parameters. The research implements the same FET-based structure as in the work of Peng et al. on nanotube-based NH3 gas detection. With respect to this conductance change, the I–V characteristic of the CNT is investigated. Finally, a comparative study shows satisfactory agreement between the proposed model and the experimental data from the mentioned research.
机译:碳纳米管(CNTs)通常是纳米级的碳纳米管,在圆柱形环境中包含碳原子网络,与硅对应物相比,碳纳米管具有出色的特性,例如高机械强度,高传感能力和大的体积比。这些特性,除了碳纳米管在暴露于不同气体时会发生电导率变化的事实外,还使其成为在诸如气体检测设备等传感/测量应用中使用的合适候选材料。在这项研究中,开发了基于场效应晶体管(FET)的结构模型作为气体检测传感器的平台,该传感器中NH 3 与NH 3 之间的化学反应导致CNT电导变化碳纳米管已被用来对具有建议的传感参数的传感机制进行建模。该研究实现了与Peng等人的工作相同的基于FET的结构。纳米管的NH 3 气体检测技术的研究关于这种电导率变化,研究了CNT的I–V特性。最后,一项比较研究表明,提出的模型与上述研究的实验数据之间具有令人满意的一致性。

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