Quantum Criticality in Monolayer Amorphous Carbon
Abstract
Amorphous solids represent the extreme limit of broken translational symmetry, in which the absence of long-range order removes well-defined crystal momenta and invalidates the Bloch description of electronic states. Monolayer amorphous carbon (MAC) has emerged as a unique realization of a strictly two-dimensional (2D) amorphous lattice defined by a structurally contiguous but topologically disordered -bonded random network devoid of any defined long-range crystal symmetry. From atomic-resolution measurements of multifractal wavefunctions, we show that disorder in MAC effectively localizes the low-energy part of the electronic spectrum but retains an extended critical-like state near the band centre (). We conjecture that this state is protected from topological disorder by remnant chiral symmetry surviving within the continuous random network, described by a Wess-Zumino-Witten (WZW) topological term. Near criticality, we verify the multifractal scaling relation , providing quantitative agreement between independently measured spatial correlation decay and multifractal scaling exponents. Our results are confirmed by atomistic tight-binding calculations that closely mirror the multifractal scaling near . Our results establish MAC as the first strictly 2D amorphous electronic system to exhibit Anderson criticality driven purely by topological disorder
Cite
@article{arxiv.2605.14349,
title = {Quantum Criticality in Monolayer Amorphous Carbon},
author = {Rejaul SK and Hanning Zhang and Artem K Grebenko and Arsen Herasymchuk and Ranjith Shivajirao and Hongji Zhang and Abee Nelson and Zheng Jue Tong and Gagandeep Singh and Naoto Kimiuchi and Yuta Sato and Kazutomo Suenaga and Chee Tat Toh and Rudolf A Romer and Shaffique Adam and Oleg V. Yazyev and Barbaros Ozyilmaz and Bent Weber},
journal= {arXiv preprint arXiv:2605.14349},
year = {2026}
}