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DOE OSTI · 2999163

Protected fermionic zero modes in periodic gauge fields

Abstract

It is well known that macroscopically normalizable zero-energy wave functions of spin-$\frac{1}{2}$ particles in a two-dimensional inhomogeneous magnetic field are spin-polarized and exactly calculable with degeneracy equaling the number of flux quanta linking the whole system. Here, extending this argument to massless Dirac fermions subjected to magnetic fields that have zero net flux but are doubly periodic in real space, we show that there exist only two Bloch-normalizable zero-energy eigenstates, one for each spin flavor. This result is immediately relevant to graphene multilayer systems subjected to doubly periodic strain fields, which at low energies enter the Hamiltonian as periodic pseudogauge vector potentials. Furthermore, we explore various related settings including nonlinearly dispersing band structure models and systems with singly periodic magnetic fields.

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BibTeXRIS

Phong, Võ Tiến [Univ. of Pennsylvania, Philadelphia, PA (United States); Florida State Univ., Tallahassee, FL (United States). National High Magnetic Field Lab. (MagLab)], Mele, Eugene J. [Univ. of Pennsylvania, Philadelphia, PA (United States)] (ORCID:0000000171405353). 2025-03-11. Protected fermionic zero modes in periodic gauge fields. https://doi.org/10.1103/physrevb.111.125129

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36 MATERIALS SCIENCE