Phong Võ Tiến, Mele E J
Department of Physics and Astronomy, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.
Phys Rev Lett. 2022 Apr 29;128(17):176406. doi: 10.1103/PhysRevLett.128.176406.
Single-layer graphene subject to periodic lateral strains is an artificial crystal that can support boundary spectra with an intrinsic polarity. This is analyzed by comparing the effects of periodic magnetic fields and strain-induced pseudomagnetic fields that, respectively, break and preserve time-reversal symmetry. In the former case, a Chern classification of the superlattice minibands with zero total magnetic flux enforces single counterpropagating modes traversing each bulk gap on opposite boundaries of a nanoribbon. For the pseudomagnetic field, pairs of counterpropagating modes migrate to the same boundary where they provide well-developed valley-helical transport channels on a single zigzag edge. We discuss possible schemes for implementing this situation and their experimental signatures.
受到周期性横向应变作用的单层石墨烯是一种能够支持具有固有极性的边界光谱的人工晶体。通过比较分别破坏和保持时间反演对称性的周期性磁场和应变诱导的赝磁场的影响来对此进行分析。在前一种情况下,对总磁通量为零的超晶格微带进行陈数分类,使得在纳米带相对边界上穿过每个体能隙的只有单个反向传播模式。对于赝磁场,反向传播模式对迁移到同一边界,在那里它们在单个锯齿形边缘上提供了发育良好的谷螺旋输运通道。我们讨论了实现这种情况的可能方案及其实验特征。