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Towards a determination of the nucleon EDM from the quark chromo-EDM operator with the gradient flow
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Towards a determination of the nucleon EDM from the quark chromo-EDM operator with the gradient flow
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In this proceedings, we lay the foundation for computing the contribution of quark chromo-electric dipole moment (qCEDM) operator to the nucleon electric dipole moment. By applying the gradient flow technique, we can parameterize the renormalization and operator mixing issues associated with the qCEDM operator on the lattice. As the nucleon mixing angle $\alpha_N$ is a key component for determining the neutron and proton electric dipole moments induced by the qCEDM operator, we present the formalism and preliminary results for $\alpha_N$ with respect to the gradient flow time $t_f$. The results are computed on $N_f=2+1$ Wilson-clover lattices provided by PACS-CS. The 3 ensembles have lattice spacing values of $a=\lbrace 0.1095,\,0.0936,\,0.0684\rbrace $fm, whilst keeping a similar $m_{\pi}\approx701$MeV, and a fixed box size of $L\approx1.9$fm.
Forward citations
Cited by 2 Pith papers
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The Neutron Electric Dipole Moment from Lattice QCD using a Background Electric Field
Using background electric fields, local topological charge, and non-Hermitian GEVP, lattice QCD yields dn = -0.0050(4)stat(8)sys θ-bar e fm at the physical point.
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The theory of electric dipole moments: the view from below
A bottom-up review organizing the theory of EDMs from quark-gluon CP violation via chiral perturbation theory and structure calculations, with emphasis on paramagnetic system sensitivity to hadronic sources.
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