Curvature-induced p-n junction and spin-orbit interaction effects in bilayer graphene
ORAL
Abstract
A non-relativistic quantum particle on a two-dimensional curved surface experiences a surface-geometry induced attractive potential and an additional spin-orbit interaction that are both characterized by the principle curvatures $(\kappa_1,\kappa_2)$ at a given point. With bilayer graphene sheets in mind, we obtain the geometric potential $V_G (\kappa_1,\kappa_2)$ and corrections to the spin-orbit interaction $H_{so}(\kappa_1,\kappa_2)$ for several surface shapes. The geometric potential suppresses the local Fermi energy. By estimating the value for this potential, we show that in zero-gap materials surface-curvature will provide a novel avenue to create p-n junctions and, in general, to control local electronic properties. A similar analysis is carried out for surface-curvature correction to the spin-orbit coupling and its consequences.
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Authors
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Yogesh Joglekar
Indiana University-Purdue University at Indianapolis, Indiana University- Purdue University Indianapolis, Indiana University -Purdue University Indianapolis (IUPUI)
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Avadh Saxena
Los Alamos National Lab, Los Alamos National Laboratory, Los Alamos National Laboratory (LANL), CNLS and T-Division, Los Alamos National Laboratory