Atomic collapse of high-order singular potentials in graphene

Fuente: arXiv
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Auteurs principaux: Zhuang, Yu-Chen, Mao, Yue, Sun, Qing-Feng
Format: Preprint
Publié: 2025
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author Zhuang, Yu-Chen
Mao, Yue
Sun, Qing-Feng
author_facet Zhuang, Yu-Chen
Mao, Yue
Sun, Qing-Feng
contents Artificial atoms in graphene hosting a series of quasi-bound states can serve as an excellent platform to explore atomic collapse and become a basis to design novel graphene nanodevices. We theoretically study behaviors of massless Dirac fermions in singular potentials with a general form of 1/r^γ. Different from the Coulomb potential that demands a supercritical charge Z > Zc, a high-order singular potential (γ > 1) is found to in principle induce atomic collapse with an infinitesimal charge Z. The energies of atomic collapse states (ACSs) within these potentials are arranged roughly as a power sequence. We also show that some special ACSs can exist even above the bulk Dirac point, which cannot appear in the Coulomb potential. These findings uncover the anomalies of massless Dirac fermions in diverse charge potentials and provide guidance for further experiments and graphene nanodevice applications.
format Preprint
id arxiv_https___arxiv_org_abs_2509_03921
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Atomic collapse of high-order singular potentials in graphene
Zhuang, Yu-Chen
Mao, Yue
Sun, Qing-Feng
Mesoscale and Nanoscale Physics
Artificial atoms in graphene hosting a series of quasi-bound states can serve as an excellent platform to explore atomic collapse and become a basis to design novel graphene nanodevices. We theoretically study behaviors of massless Dirac fermions in singular potentials with a general form of 1/r^γ. Different from the Coulomb potential that demands a supercritical charge Z > Zc, a high-order singular potential (γ > 1) is found to in principle induce atomic collapse with an infinitesimal charge Z. The energies of atomic collapse states (ACSs) within these potentials are arranged roughly as a power sequence. We also show that some special ACSs can exist even above the bulk Dirac point, which cannot appear in the Coulomb potential. These findings uncover the anomalies of massless Dirac fermions in diverse charge potentials and provide guidance for further experiments and graphene nanodevice applications.
title Atomic collapse of high-order singular potentials in graphene
topic Mesoscale and Nanoscale Physics
url https://arxiv.org/abs/2509.03921