论文标题
三维多孔石墨烯对狄拉克准颗粒的拓扑作用
Topological effects of three-dimensional porous graphene on Dirac quasiparticles
论文作者
论文摘要
本文报告了具有可调孔尺寸的三维(3D)多孔石墨烯的拓扑作用,以及保存的狄拉克准粒子的2D石墨烯系统对其电气性能。该3D结构的特征是没有边缘的平滑互连的石墨烯片的固有曲率,其结构和特性可以用其孔径来控制。孔径对电气传输特性的影响通过磁磁性测量进行了研究。我们观察到,带有小孔的3D石墨烯表现出随温度降低的过渡到弱定位的过渡。基于量子校正的理论的比较阐明了内在曲率的增加会显着诱导间隔散射事件,从而破坏了手性。间隔散射速率的增加源自3D石墨烯的独特拓扑作用,即形成高曲率和由此产生的手性混合所需的拓扑缺陷。我们还讨论了由于微观化学键合状态而引起的散射过程,这是高空间分辨X射线光发射光谱成像发现的,以支持我们发现的有效性。
This paper reports on the topological effects of three-dimensional (3D) porous graphene with tunable pore sizes and a preserved 2D graphene system of Dirac quasiparticles on its electrical properties. This 3D architecture is characterized by the intrinsic curvature of smoothly interconcnected graphene sheets without edges, the structures and properties of which can be controlled with its pore sizes. The impact of pore size on the electrical transport properties was investigated through magnetoresistance measurements. We observed that 3D graphene with small pores exhibits transitioning to weak localization with decreasing temperature. The comparison with the theory based on the quantum correction clarified that an increase in the intrinsic curvature significantly induces the intervalley scattering event, which breaks the chirality. This increase in the intervalley scattering rate originates from the unique topological effects of 3D graphene, i.e., the topological defects required to form the high curvature and the resulting chirality mixing. We also discuss the scattering processes due to microscopic chemical bonding states as found by high spatial-resolved X-ray photoemission spectral imaging, to support the validity of our finding.