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Critical role of device geometry for the phase diagram of twisted bilayer graphene

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Title: Critical role of device geometry for the phase diagram of twisted bilayer graphene
Authors: Goodwin, Z
Vitale, V
Corsetti, F
Efetov, DK
Mostofi, AA
Lischner, J
Item Type: Journal Article
Abstract: The effective interaction between electrons in two-dimensional materials can be modified by their environment, enabling control of electronic correlations and phases. Here, we study the dependence of electronic correlations in twisted bilayer graphene (tBLG) on the separation to the metallic gate(s) in two device configurations. Using an atomistic tight-binding model, we determine the Hubbard parameters of the flat bands as a function of gate separation, taking into account the screening from the metallic gate(s), the dielectric spacer layers, and the tBLG itself. We determine the critical gate separation at which the Hubbard parameters become smaller than the critical value required for a transition from a correlated insulator state to a (semi)metallic phase. We show how this critical gate separation depends on twist angle, doping, and the device configuration. These calculations may help rationalize the reported differences between recent measurements of tBLG's phase diagram and suggest that correlated insulator states can be screened out in devices with thin dielectric layers.
Issue Date: 15-Apr-2020
Date of Acceptance: 10-Mar-2020
URI: http://hdl.handle.net/10044/1/78877
DOI: 10.1103/PhysRevB.101.165110
ISSN: 1098-0121
Publisher: American Physical Society
Start Page: 1
End Page: 8
Journal / Book Title: Physical Review B: Condensed Matter and Materials Physics
Volume: 101
Issue: 16
Copyright Statement: ©2020 American Physical Society
Sponsor/Funder: Engineering and Physical Sciences Research Council
Engineering & Physical Science Research Council (EPSRC)
Engineering and Physical Sciences Research Council
Funder's Grant Number: EP/L015579/1
EP/S025324/1
EPSRC (EP/L015579/1)
Keywords: Science & Technology
Technology
Physical Sciences
Materials Science, Multidisciplinary
Physics, Applied
Physics, Condensed Matter
Materials Science
Physics
MAGIC-ANGLE
ELECTRON CORRELATIONS
SUPERCONDUCTORS
Science & Technology
Technology
Physical Sciences
Materials Science, Multidisciplinary
Physics, Applied
Physics, Condensed Matter
Materials Science
Physics
MAGIC-ANGLE
ELECTRON CORRELATIONS
SUPERCONDUCTORS
cond-mat.str-el
cond-mat.str-el
cond-mat.mtrl-sci
cond-mat.supr-con
Fluids & Plasmas
02 Physical Sciences
03 Chemical Sciences
09 Engineering
Publication Status: Published
Article Number: ARTN 165110
Online Publication Date: 2020-04-09
Appears in Collections:Materials
Faculty of Natural Sciences
Faculty of Engineering