Holographic treatment of boundary disorder in a topological insulator
Abstract
The effect of boundary disorder on electronic systems is particularly interesting for topological phases with surface and edge states. Using exact diagonalization, it has been demonstrated that the surface states of a three-dimensional (3D) topological insulator survive strong surface disorder, and simply get pushed to a clean part of the bulk. Here we explore a method which analytically eliminates the clean bulk and reduces a D-dimensional problem to a Hamiltonian-diagonalization problem within the (D−1)-dimensional disordered boundary. This dramatic reduction in complexity allows the analysis of significantly bigger systems than is possible with exact diagonalization. We use our method to analyze a 2D topological spin-Hall insulator with nonmagnetic and magnetic edge impurities, and we calculate the disorder-induced redistribution of probability density (or local density of states) in the insulating bulk, as well as the transport effects of edge impurities. The analysis reveals how the edge recovers from disorder scattering as the disorder strength increases.
Additional Information
© 2015 American Physical Society. Received 3 May 2015; published 6 August 2015. It is a pleasure to acknowledge support from the Sherman- Fairchild Foundation (R.M.), the Packard Foundation, the Walter Burke Institue of Theoretical Physics, as well as the Institute of Quantum Information and Matter, an NSF Frontier Center, with the support of the Gordon and Betty Moore Foundation (K.W.K., G.R.). In addition, support from NSERC and CIFAR is gratefully acknowledged (M.F.).Attached Files
Published - PhysRevB.92.075110.pdf
Submitted - 1503.03456.pdf
Files
Name | Size | Download all |
---|---|---|
md5:d75e78fe44655d424dff51a379de5c24
|
607.9 kB | Preview Download |
md5:57c3e8878d75131c2559b9a7a3e18daf
|
1.6 MB | Preview Download |
Additional details
- Alternative title
- 'Holographic' treatment of surface disorder on a topological insulator
- Eprint ID
- 59965
- Resolver ID
- CaltechAUTHORS:20150828-142414208
- Sherman Fairchild Foundation
- David and Lucile Packard Foundation
- Walter Burke Institue of Theoretical Physics
- Institute of Quantum Information and Matter (IQIM)
- NSF Physics Frontiers Center
- Gordon and Betty Moore Foundation
- Natural Sciences and Engineering Research Council of Canada (NSERC)
- Canadian Institute for Advanced Research (CIAR)
- Created
-
2015-08-29Created from EPrint's datestamp field
- Updated
-
2021-11-10Created from EPrint's last_modified field
- Caltech groups
- Walter Burke Institute for Theoretical Physics, Institute for Quantum Information and Matter