Non-Perturbative Regularization of 1+1D Anomaly-Free Chiral Fermions and Bosons: On the equivalence of anomaly matching conditions and boundary gapping rules
Juven Wang, Xiao-Gang Wen

TL;DR
This paper proposes a non-perturbative lattice regularization method for 1+1D anomaly-free chiral fermions and bosons, demonstrating the equivalence of anomaly matching conditions and boundary gapping rules through a topological proof.
Contribution
It introduces a novel approach to realize anomaly-free chiral matter theories on a lattice with onsite symmetry using designed multi-fermion interactions, avoiding fermion doubling issues.
Findings
Constructed a lattice model for specific 1+1D chiral fermions with onsite U(1) symmetry.
Established a topological proof linking anomaly cancellation to gapping rules.
Compared new method with existing models like Ginsparg-Wilson and CGP, suggesting modifications.
Abstract
A non-perturbative lattice regularization of chiral fermions and bosons with anomaly-free symmetry in 1+1D spacetime is proposed. More precisely, we ask "whether there is a local short-range quantum Hamiltonian with a finite Hilbert space for a finite system realizing onsite symmetry defined on a 1D spatial lattice, such that its low energy physics produces a 1+1D anomaly-free chiral matter theory of symmetry ?" In particular, we propose that the 3-5-4-0 U(1) chiral fermion theory, with two left-moving fermions of charge-3 and 4, and two right-moving fermions of charge-5 and 0 at low energy, can be put on a 1D spatial lattice where the U(1) symmetry is realized as an onsite symmetry, if we include properly designed multi-fermion interactions with intermediate strength. In general, we propose that any 1+1D U(1)-anomaly-free chiral matter theory can be defined…
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Taxonomy
TopicsCold Atom Physics and Bose-Einstein Condensates · Topological Materials and Phenomena · Quantum Chromodynamics and Particle Interactions
