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Analytical modeling of the sensing parameters for graphene nanoscroll-based gas sensors

机译:石墨烯纳米滚动气体传感器传感参数的分析模型

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Graphene nanoscrolls (GNSs) as a new category of quasi one dimensional (1D) materials belong to the carbon-based nanomaterials, which have recently captivated the attention of researchers. The latest discoveries of the outstanding characteristics of GNSs in terms of their structural and electronic properties such as, high mobility, controllable band gap, tunable core size, high mechanical strength, high sensing capability and large surface-to-volume ratio make them a great candidate for nanoelectronic devices in future work. Due to the importance and critical role of nanoscale sensors and biosensors in medical facilities and human life, using promising materials like graphene and graphene nanoscrolls has widely attracted the interest and attention of researchers to achieve better accuracy and sensitivity in these devices. Up until now, the majority of surveys conducted previously have focused on experimental studies for sensors. Therefore, there is a lack of analytical models in comparison to experimental surveys. In order to start and understand the modeling of gas sensor structure, the field effect transistor (FET)-based structure has been employed as a basic model for a gas detection sensor. The graphene nanoscroll conductance has been affected under exposure to the NH3 gas molecules. The adsorption of NH3 gas concentration on the GNSs surface which is caused by a chemical reaction between NH3 and the GNSs. Therefore it makes the changes in the GNS conductance and current-voltage characteristics of the proposed GNS based gas sensor. This phenomenon is considered as the sensing mechanism with proposed sensing parameters. The I-V characteristics of a GNS-based sensor have been proposed as a criterion to detect the effect of gas adsorption. Finally, in order to verify the accuracy of the proposed model, the results are compared with the existing experimental works.
机译:石墨烯纳米卷(GNSs)作为一种新型的一维(一维)材料属于碳基纳米材料,近来引起了研究人员的关注。最新发现的GNS具有出色的结构和电子特性,例如高迁移率,可控制的带隙,可调的磁芯尺寸,高机械强度,高感应能力和大的体积比纳米电子器件在未来工作中的候选人。由于纳米级传感器和生物传感器在医疗设施和人类生活中的重要性和关键作用,使用有前途的材料(如石墨烯和石墨烯纳米卷)已引起研究人员的兴趣和关注,他们希望在这些设备中获得更好的准确性和灵敏度。到目前为止,以前进行的大多数调查都集中在传感器的实验研究上。因此,与实验调查相比,缺乏分析模型。为了开始和理解气体传感器结构的建模,基于场效应晶体管(FET)的结构已被用作气体检测传感器的基本模型。在暴露于NH3气体分子的作用下,石墨烯纳米滚动电导已受到影响。 NH3与GNSs之间的化学反应引起的NH3气体浓度在GNSs表面的吸附。因此,它改变了所提出的基于GNS的气体传感器的GNS电导和电流-电压特性。该现象被认为是具有建议的感测参数的感测机制。已提出基于GNS的传感器的I-V特性作为检测气体吸附效果的标准。最后,为了验证所提出模型的准确性,将结果与现有的实验工作进行了比较。

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