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Fermion coupling to loop quantum gravity: canonical formulation

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arxiv 2112.08865 v3 pith:PKW7UVJZ submitted 2021-12-16 gr-qc hep-th

Fermion coupling to loop quantum gravity: canonical formulation

classification gr-qc hep-th
keywords fermionquantumconstraintgravityhamiltonianloopfieldgauss
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In the model of a fermion field coupled to loop quantum gravity, we consider the Gauss and the Hamiltonian constraints. According to the explicit solutions to the Gauss constraint, the fermion spins and the gravitational spin networks intertwine with each other so that the fermion spins contribute to the volume of the spin network vertices. For the Hamiltonian constraint, the regularization and quantization procedures are presented in detail. By introducing an adapted vertex Hilbert space to remove the regulator, we propose a diffeomorphism covariant graph-changing Hamiltonian constraint operator of the fermion field. This operator shows how fermions move in the loop quantum gravity spacetime and simultaneously influences the background quantum geometry.

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  1. An inquiry on the Absence of Fermion Doubling and why the Nielsen-Ninomiya Theorem Does Not Apply to Nonlocal Quantum Field Theory

    hep-th 2026-07 accept novelty 5.0

    A continuum nonlocal Dirac operator multiplied by an invertible zero-free entire function has exactly the same kernel and finite-momentum zero set as the ordinary Dirac operator, so fermion doubling is absent.