Quantum criticality in the spin-1/2 Heisenberg chain system copper pyrazine dinitrate

Low-dimensional quantum magnets promote strong correlations between magnetic moments that lead to fascinating quantum phenomena. A particularly interesting system is the antiferromagnetic spin-1/2 Heisenberg chain because it is exactly solvable by the Bethe-Ansatz method. It is approximately realize...

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Veröffentlicht in:Science advances 2017-12, Vol.3 (12), p.eaao3773-eaao3773
Hauptverfasser: Breunig, Oliver, Garst, Markus, Klümper, Andreas, Rohrkamp, Jens, Turnbull, Mark M, Lorenz, Thomas
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creator Breunig, Oliver
Garst, Markus
Klümper, Andreas
Rohrkamp, Jens
Turnbull, Mark M
Lorenz, Thomas
description Low-dimensional quantum magnets promote strong correlations between magnetic moments that lead to fascinating quantum phenomena. A particularly interesting system is the antiferromagnetic spin-1/2 Heisenberg chain because it is exactly solvable by the Bethe-Ansatz method. It is approximately realized in the magnetic insulator copper pyrazine dinitrate, providing a unique opportunity for a quantitative comparison between theory and experiment. We investigate its thermodynamic properties with a particular focus on the field-induced quantum phase transition. Thermal expansion, magnetostriction, specific heat, magnetization, and magnetocaloric measurements are found to be in excellent agreement with exact Bethe-Ansatz predictions. Close to the critical field, thermodynamics obeys the expected quantum critical scaling behavior, and in particular, the magnetocaloric effect and the Grüneisen parameters diverge in a characteristic manner. Beyond its importance for quantum magnetism, our study establishes a paradigm of a quantum phase transition, which illustrates fundamental principles of quantum critical thermodynamics.
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subjects Condensed Matter Physics
Materials Science
Physics
SciAdv r-articles
title Quantum criticality in the spin-1/2 Heisenberg chain system copper pyrazine dinitrate
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