Vacancy-induced tunable Kondo effect in twisted bilayer graphene
Abstract
In single sheets of graphene, vacancy-induced states have been shown to host an effective spin-1/2 hole that can be Kondo-screened at low temperatures. Here, we show how these vacancy-induced impurity states survive in twisted bilayer graphene (TBG), which thus provides a tunable system to probe the critical destruction of the Kondo effect in pseudogap hosts. Ab-initio calculations and atomic-scale modeling are used to determine the nature of the vacancy states in the vicinity of the magic angle in TBG, demonstrating that the vacancy can be treated as a quantum impurity. Utilizing this insight, we construct an Anderson impurity model with a TBG host that we solve using the numerical renormalization group combined with the kernel polynomial method. We determine the phase diagram of the model and show how there is a strict dichotomy between vacancies in the AA/BB versus AB/BA tunneling regions. In AB/BA vacancies, the Kondo temperature at the magic angle develops a broad distribution with a tail to vanishing temperatures due to multifractal wavefunctions at the magic angle. We argue that scanning tunneling microscopy in the vicinity of the vacancy can act as a probe of both the critical single-particle states and the underlying many-body ground state in magic-angle TBG.
Keywords
Cite
@article{arxiv.2312.09286,
title = {Vacancy-induced tunable Kondo effect in twisted bilayer graphene},
author = {Yueqing Chang and Jinjing Yi and Ang-Kun Wu and Fabian B. Kugler and Eva Y. Andrei and David Vanderbilt and Gabriel Kotliar and J. H. Pixley},
journal= {arXiv preprint arXiv:2312.09286},
year = {2024}
}
Comments
7 pages, 4 figures; including Supplementary Material (11 pages, 12 figures)