1 research outputs found
Resonant Tunneling in Graphene Pseudomagnetic Quantum Dots
Realistic relaxed configurations
of triaxially strained graphene quantum dots are obtained from unbiased
atomistic mechanical simulations. The local electronic structure and
quantum transport characteristics of y-junctions based on such dots
are studied, revealing that the quasi-uniform pseudomagnetic field
induced by strain restricts transport to Landau level- and edge state-assisted
resonant tunneling. Valley degeneracy is broken in the presence of
an external field, allowing the selective filtering of the valley
and chirality of the states assisting in the resonant tunneling. Asymmetric
strain conditions can be explored to select the exit channel of the
y-junction