English

Field Theory for a Deuteron Quantum Liquid

High Energy Physics - Phenomenology 2015-05-18 v2 Superconductivity High Energy Physics - Theory

Abstract

Based on general symmetry principles we study an effective Lagrangian for a neutral system of condensed spin-1 deuteron nuclei and electrons, at greater-than-atomic but less-than-nuclear densities. We expect such matter to be present in thin layers within certain low-mass brown dwarfs. It may also be produced in future shock-wave-compression experiments as an effective fuel for laser induced nuclear fusion. We find a background solution of the effective theory describing a net spin zero condensate of deuterons with their spins aligned and anti-aligned in a certain spontaneously emerged preferred direction. The spectrum of low energy collective excitations contains two spin waves with linear dispersions -- like in antiferromagnets -- as well as gapped longitudinal and transverse modes related to the Meissner effect -- like in superconductors. We show that counting of the Nambu-Goldstone modes of spontaneously broken internal and space-time symmetries obeys, in a nontrivial way, the rules of the Goldstone theorem for Lorentz non-invariant systems. We discuss thermodynamic properties of the condensate, and its potential manifestation in the low-mass brown dwarfs.

Keywords

Cite

@article{arxiv.1003.0865,
  title  = {Field Theory for a Deuteron Quantum Liquid},
  author = {Lasha Berezhiani and Gregory Gabadadze and David Pirtskhalava},
  journal= {arXiv preprint arXiv:1003.0865},
  year   = {2015}
}

Comments

19 LaTeX pages; v2: 2 refs added, JHEP version

R2 v1 2026-06-21T14:53:27.814Z