Valley-based Cooper Pair Splitting via Topologically Confined Channels in Bilayer Graphene
Abstract
Bilayer graphene hosts valley-chiral one dimensional modes at domain walls between regions of different interlayer potential or stacking order. When such a channel is brought into proximity to a superconductor, the two electrons of a Cooper pair which tunnel into it move in opposite directions because they belong to different valleys related by the time-reversal symmetry. This is a kinetic variant of Cooper pair splitting, which requires neither Coulomb repulsion nor energy filtering but is enforced by the robustness of the valley isospin in the absence of atomic-scale defects. We derive an effective model for the guided modes in proximity to an s-wave superconductor, calculate the conductance carried by split and spin-entangled electron pairs, and interpret it as a result of local Andreev reflection processes, whereas crossed Andreev reflection is absent.
Keywords
Cite
@article{arxiv.1509.06560,
title = {Valley-based Cooper Pair Splitting via Topologically Confined Channels in Bilayer Graphene},
author = {Alexander Schroer and Peter G. Silvestrov and Patrik Recher},
journal= {arXiv preprint arXiv:1509.06560},
year = {2016}
}
Comments
7 pages, 3 figures