English

Revealing three-dimensional quantum criticality by Sr-substitution in Han Purple

Strongly Correlated Electrons 2021-06-16 v2

Abstract

Classical and quantum phase transitions (QPTs), with their accompanying concepts of criticality and universality, are a cornerstone of statistical thermodynamics. An exemplary controlled QPT is the field-induced magnetic ordering of a gapped quantum magnet. Although numerous "quasi-one-dimensional" coupled spin-chain and -ladder materials are known whose ordering transition is three-dimensional (3D), quasi-2D systems are special for several physical reasons. Motivated by the ancient pigment Han Purple (BaCuSi2_{2}O6_{6}), a quasi-2D material displaying anomalous critical properties, we present a complete analysis of Ba0.9_{0.9}Sr0.1_{0.1}CuSi2_{2}O6_{6}. We measure the zero-field magnetic excitations by neutron spectroscopy and deduce the magnetic Hamiltonian. We probe the field-induced transition by combining magnetization, specific-heat, torque and magnetocalorimetric measurements with low-temperature nuclear magnetic resonance studies near the QPT. By a Bayesian statistical analysis and large-scale Quantum Monte Carlo simulations, we demonstrate unambiguously that observable 3D quantum critical scaling is restored by the structural simplification arising from light Sr-substitution in Han Purple.

Keywords

Cite

@article{arxiv.2103.06860,
  title  = {Revealing three-dimensional quantum criticality by Sr-substitution in Han Purple},
  author = {Stephan Allenspach and Pascal Puphal and Joosep Link and Ivo Heinmaa and Ekaterina Pomjakushina and Cornelius Krellner and Jakob Lass and Gregory S. Tucker and Christof Niedermayer and Shusaku Imajo and Yoshimitsu Kohama and Koichi Kindo and Steffen Krämer and Mladen Horvatić and Marcelo Jaime and Alexander Madsen and Antonietta Mira and Nicolas Laflorencie and Frédéric Mila and Bruce Normand and Christian Rüegg and Raivo Stern and Franziska Weickert},
  journal= {arXiv preprint arXiv:2103.06860},
  year   = {2021}
}

Comments

19 pages, 5 figures