Department of Physics and Astronomy, Stony Brook University , Stony Brook, New York11794, United States.
Nano Lett. 2017 Nov 8;17(11):7009-7014. doi: 10.1021/acs.nanolett.7b03618. Epub 2017 Oct 10.
Strain-induced lattice deformation affects electron hopping between the atoms. This effectively gives rise to a gauge field which impacts on the charge transport. In graphene, such gauge field is associated with a vector potential which mimics that of a magnetic field. Understanding the impact of the gauge field on charge transport is of essential importance for emerging topics including straintronics and valleytronics in two-dimensional materials. While extensive theoretical works have been carried out over the past decade, experimental progress has been largely limited to local probe and optical studies. Experimental charge transport study has been baffled by the challenge in creating an effective and independent tuning knob of strain without compromising the quality of graphene. Here we studied high quality suspended graphene field effect transistors fabricated on flexible Polyimide substrates. Applying uniaxial strain by bending the substrate, we observed a strain-induced resistivity with power-law carrier density dependence. The power factor is found to be correlated with the surface fractal dimension of the rippled graphene, in good agreement with the random gauge field scattering theory. Both phase coherent transport and magnetotransport properties are found to be strain-dependent, which can be understood in terms of a strain-tunable disorder.
应变引起的晶格变形会影响原子之间的电子跃迁。这实际上会产生一个规范场,从而影响电荷输运。在石墨烯中,这种规范场与一个矢量势相关联,该矢量势模拟了磁场。理解规范场对电荷输运的影响对于二维材料中的新兴课题,包括应变电子学和谷电子学至关重要。虽然在过去的十年中进行了广泛的理论研究,但实验进展在很大程度上仅限于局部探针和光学研究。在不影响石墨烯质量的情况下,创建一个有效且独立的应变调节旋钮,这一挑战使得实验性的电荷输运研究变得复杂。在这里,我们研究了在柔性聚酰亚胺衬底上制造的高质量悬浮石墨烯场效应晶体管。通过弯曲衬底施加单轴应变,我们观察到应变诱导的电阻率与载流子密度呈幂律关系。发现功率因子与波纹石墨烯的表面分形维数相关,与随机规范场散射理论吻合较好。我们还发现相干输运和磁输运特性都与应变有关,可以根据应变可调的无序来理解这一点。