论文标题
石墨烯中的栅极可调二维超晶格
Gate-tunable two-dimensional superlattices in graphene
论文作者
论文摘要
我们报告了一种有效的技术,可以通过后门的合并动作和几层石墨烯图案化的底门互补,以诱导石墨烯中栅极可调的二维超级晶格。可以在范德华堆叠过程中轻松制造和实现我们方法中的图案门,从而可以灵活使用与任意几何形状的超级晶格。在带有晶格常数的超级晶格上的运输测量中,观察到了霍夫斯塔特蝴蝶的明显卫星狄拉克点和签名,包括非单调量子响应。此外,在运输模拟中准确地再现了实验结果,并与计算出的频带结构中的特征显示出良好的一致性。总体而言,我们在实验和理论建模中介绍了基于石墨烯的超级晶格的全面图片,具有广泛的微型效果。提出的技术适用于研究更先进的几何形状,这些几何形状无法通过其他方法访问。
We report an efficient technique to induce gate-tunable two-dimensional superlattices in graphene by the combined action of a back gate and a few-layer graphene patterned bottom gate complementary to existing methods. The patterned gates in our approach can be easily fabricated and implemented in van der Waals stacking procedures allowing flexible use of superlattices with arbitrary geometry. In transport measurements on a superlattice with lattice constant $a=40$ nm well pronounced satellite Dirac points and signatures of the Hofstadter butterfly including a non-monotonic quantum Hall response are observed. Furthermore, the experimental results are accurately reproduced in transport simulations and show good agreement with features in the calculated band structure. Overall, we present a comprehensive picture of graphene-based superlattices, featuring a broad range of miniband effects, both in experiment and in theoretical modeling. The presented technique is suitable for studying more advanced geometries which are not accessible by other methods.