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A carrier velocity model for electrical detection of gas molecules

机译:用于气体分子电检测的载流子速度模型

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摘要

Nanomaterial-based sensors with high sensitivity, fast response and recovery time, large detection range, and high chemical stability are in immense demand for the detection of hazardous gas molecules. Graphene nanoribbons (GNRs) which have exceptional electrical, physical, and chemical properties can fulfil all of these requirements. The detection of gas molecules using gas sensors, particularly in medical diagnostics and safety applications, is receiving particularly high demand. GNRs exhibit remarkable changes in their electrical characteristics when exposed to different gases through molecular adsorption. In this paper, the adsorption effects of the target gas molecules (CO and NO) on the electrical properties of the armchair graphene nanoribbon (AGNR)-based sensor are analytically modelled. Thus, the energy dispersion relation of AGNR is developed considering the molecular adsorption effect using a tight binding (TB) method. The carrier velocity is calculated based on the density of states (DOS) and carrier concentration (n) to obtain I–V characteristics and to monitor its variation in the presence of the gas molecules. Furthermore, the I–V characteristics and energy band structure of the AGNR sensor are simulated using first principle calculations to investigate the gas adsorption effects on these properties. To ensure the accuracy of the proposed model, the I–V characteristics of the AGNR sensor that are simulated based both on the proposed model and first principles calculations are compared, and an acceptable agreement is achieved.
机译:基于纳米材料的传感器具有高灵敏度,快速响应和恢复时间,大检测范围以及高化学稳定性,对检测有害气体分子有着巨大的需求。具有优异的电,物理和化学性能的石墨烯纳米带(GNR)可以满足所有这些要求。使用气体传感器来检测气体分子的需求特别高,特别是在医学诊断和安全应用中。当通过分子吸附暴露于不同的气体时,GNR的电特性会发生显着变化。本文分析了目标气体分子(CO和NO)对扶手椅石墨烯纳米带(AGNR)传感器电性能的吸附作用。因此,考虑到使用紧密结合(TB)方法的分子吸附作用,开发了AGNR的能量分散关系。载流子速度是根据状态密度(DOS)和载流子浓度(n)计算得出的,从而获得IV特性并监视其在气体分子存在下的变化。此外,使用第一性原理计算模拟了AGNR传感器的I–V特性和能带结构,以研究气体吸附对这些特性的影响。为了确保所提出模型的准确性,比较了基于所提出模型和第一性原理计算模拟的AGNR传感器的I–V特性,并获得了可接受的协议。

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