English

Quantum valence bond ice theory for proton-driven quantum spin-dipole liquids

Strongly Correlated Electrons 2020-10-16 v5 Materials Science Statistical Mechanics Quantum Physics

Abstract

We present a theory of a hybrid quantum liquid state, quantum spin-dipole liquid\textit{quantum spin-dipole liquid} (QSDL), in a hydrogen-bonded electron system, by combining a quantum proton ice and Anderson's resonating valence bond spin liquid theory, motivated by the recent experimental discovery of a quantum spin liquid with proton fluctuations in κ\kappa-H3_3(Cat-EDT-TTF)2_2 (a.k.a. H-Cat). In our theory, an electron spin liquid and a proton dipole liquid are realized simultaneously in the ground state called quantum valence bond ice\textit{quantum valence bond ice}. In this state, neither of them can be established independently of the other. Analytical and numerical calculations reveal that this state has a large entanglement entropy between spins and dipoles, which is far beyond the (crude) Born-Oppenheimer approximation. We also examine the stability of QSDL with respect to perturbations and discuss implications for experiments in H-Cat and its deuterated analog D-Cat.

Keywords

Cite

@article{arxiv.1903.03567,
  title  = {Quantum valence bond ice theory for proton-driven quantum spin-dipole liquids},
  author = {Masahiko G. Yamada and Yasuhiro Tada},
  journal= {arXiv preprint arXiv:1903.03567},
  year   = {2020}
}

Comments

9 pages, 7 figures

R2 v1 2026-06-23T08:02:31.430Z