Applying Twisted Boundary Conditions for Few-body Nuclear Systems
Abstract
We describe and implement twisted boundary conditions for the deuteron and triton systems within finite-volumes using the nuclear lattice EFT formalism. We investigate the finite-volume dependence of these systems with different twists angles. We demonstrate how various finite-volume information can be used to improve calculations of binding energies in such a framework. Our results suggests that with appropriate twisting of boundaries, infinite-volume binding energies can be reliably extracted from calculations using modest volume sizes with cubic length fm. Of particular importance is our derivation and numerical verification of three-body analogue of `i-periodic' twist angles that eliminate the leading order finite-volume effects to the three-body binding energy.
Keywords
Cite
@article{arxiv.1511.06598,
title = {Applying Twisted Boundary Conditions for Few-body Nuclear Systems},
author = {Christopher Körber and Thomas Luu},
journal= {arXiv preprint arXiv:1511.06598},
year = {2016}
}
Comments
29 pages, 11 figures