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Electrical Properties of Two-Dimensional Materials Used in Gas Sensors

机译:气体传感器中使用的二维材料的电学性质

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摘要

In the search for gas sensing materials, two-dimensional materials offer the possibility of designing sensors capable of tuning the electronic band structure by controlling their thickness, quantity of dopants, alloying between different materials, vertical stacking, and the presence of gases. Through materials engineering it is feasible to study the electrical properties of two-dimensional materials which are directly related to their crystalline structure, first Brillouin zone, and dispersion energy, the latter estimated through the tight-binding model. A review of the electrical properties directly related to the crystalline structure of these materials is made in this article for the two-dimensional materials used in the design of gas sensors. It was found that most 2D sensing materials have a hexagonal crystalline structure, although some materials have monoclinic, orthorhombic and triclinic structures. Through the simulation of the mathematical models of the dispersion energy, two-dimensional and three-dimensional electronic band structures were predicted for graphene, hexagonal boron nitride (h-BN) and silicene, which must be known before designing a gas sensor.
机译:在寻找气体传感材料时,二维材料提供了设计传感器的可能性,这些传感器能够通过控制其厚度,掺杂剂数量,不同材料之间的合金化,垂直堆叠以及气体的存在来调节电子带的结构。通过材料工程,研究二维材料的电性能是可行的,这些材料与它们的晶体结构,第一个布里渊区和分散能直接相关,后者通过紧密结合模型进行估算。本文针对气体传感器设计中使用的二维材料,对与这些材料的晶体结构直接相关的电性能进行了综述。已发现,尽管某些材料具有单斜晶,正交晶和三斜晶结构,但大多数2D传感材料均具有六边形晶体结构。通过对弥散能数学模型的仿真,预测了石墨烯,六方氮化硼(h-BN)和硅烯的二维和三维电子能带结构,这在设计气体传感器之前必须知道。

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