不同层石墨烯上的气体吸附:第一性原理研究

Jiaming Ni, N. Yang, Q. Liang, Junke Jiang, R. Meng, Yiping Huang, Xianping Chen
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引用次数: 3

摘要

目前,传感器应用广泛,种类繁多,如生物传感器、气体传感器、湿度传感器、光学传感器、压力传感器等。然而,传感器在导电性、稳定性、吸附能力等诸多方面的缺陷仍有待优化。根据材料的性能,通过第一性原理计算研究了H2、CO2、CH4、Ar和N2在原始石墨烯上的吸附行为。石墨烯由于其二维晶体结构具有良好的力学、电学等性能而受到世界各国的普遍关注。石墨烯还具有很大的比表面积,因此具有良好的吸附能力。石墨烯是一种零氮隙半导体,没有磁性,但如果与其他材料吸附或掺杂,即使打开带隙,石墨烯也会具有磁性。因此,石墨烯在气体传感器等纳米电子器件中具有广阔的应用前景。通过第一性原理计算,比较了原始石墨烯和气体分子吸附石墨烯的电子结构和磁性。我们发现不同类型的石墨烯具有不同的电子能带结构。大多数吸附在石墨烯上的分子都可以带弱电荷作为供体或受体。我们发现当气体分子吸附在不同层数的石墨烯上时,其带隙和吸附能是不同的。不同的层对石墨烯的吸附有不同的影响。因此,根据第一性原理计算,随着层数的增加,石墨烯的气体吸附性能越来越好。本研究提供了一种合理的方法,利用第一性原理模拟来评估不同层数的石墨烯对传感器的吸附。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Gas adsorption on graphene with different layers: A first-principles study
At present, the sensor is widely used and its types are varied, such as biosensor, gas sensor, humidity sensor, optics sensor, pressure sensor, etc. However, many defects of sensors remain to be optimized in many aspects such as conductivity, stability and adsorption capacity. According to the performance of materials, the study of the adsorption behavior of H2, CO2, CH4, Ar and N2 on the pristine graphene has been performed through First-principle calculation. The graphene has been attracted popular attention all over the world, because the two-dimensional crystal structure of graphene has a good mechanical, electrical properties etc. The graphene also has a great specific surface area, so it has a well adsorption capacity. The graphene is a zero-n gap semiconductor with no magnetism, however, the graphene will be magnetic if it adsorbed or doped with other materials even the band gap is opened. Therefore, the graphene has a promising future in nano electronic devices such as gas sensor. We compared the electronic structures and the magnetism between the pristine graphene and the gas molecule-adsorbed graphene through the first principle calculation. We have found that the different types of graphene have different electronic band structures. Most of the molecules adsorption on graphene can be weakly charged took as donor or acceptor. We discovered that the band gap and the adsorption energy is different when the gas molecules adsorped on the graphene with different number of layers. The different layers have different impacts on the adsorption of graphene. Therefore, according to First principles calculation, with the number of layers increasing, the gas adsorption property of graphene is getting better and better. This study provides a rational way using first principle simulation to evaluate the different number of layers of graphene for the adsorption of sensors.
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