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Nano-structured interface of graphene and h-BN for sensing applications

机译:石墨烯和h-BN的纳米结构界面用于传感应用

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The atomically-precise controlled synthesis of graphene stripes embedded in hexagonal boron nitride opens up new possibilities for the construction of nanodevices with applications in sensing. Here, we explore properties related to the electronic structure and quantum transport of a graphene nanoroad embedded in hexagonal boron nitride, using a combination of density functional theory and the non-equilibrium Green's functions method to calculate the electric conductance. We find that the graphene nanoribbon signature is preserved in the transmission spectra and that the local current is mainly confined to the graphene domain. When a properly sized nanopore is created in the graphene part of the system, the electronic current becomes restricted to a carbon chain running along the border with hexagonal boron nitride. This circumstance could allow the hypothetical nanodevice to become highly sensitive to the electronic nature of molecules passing through the nanopore, thus opening up ways to detect gas molecules, amino acids, or even DNA sequences based on a measurement of the real-time conductance modulation in the graphene nanoroad.
机译:嵌入六边形氮化硼中的石墨烯条的原子精确控制的合成为纳米器件在传感领域的应用提供了新的可能性。在这里,我们结合密度泛函理论和非平衡格林函数方法计算电导率,研究了嵌入六方氮化硼中的石墨烯纳米路的电子结构和量子输运的性质。我们发现,石墨烯纳米带签名保留在透射光谱中,并且局部电流主要限于石墨烯域。当在系统的石墨烯部分中创建适当大小的纳米孔时,电子电流将被限制在沿着与六方氮化硼的边界延伸的碳链。这种情况可能使假设的纳米器件对通过纳米孔的分子的电子性质高度敏感,从而开辟了一种基于对实时电导调制的测量来检测气体分子,氨基酸甚至DNA序列的方法。石墨烯纳米路。

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