LT Scaling in Depleted Quantum Spin Ladders
ORAL
Abstract
Using a combination of neutron scattering, calorimetry, quantum Monte Carlo simulations, and analytic results we uncover confinement effects in depleted, partially magnetized quantum spin ladders. We show that introducing nonmagnetic impurities into magnetized spin ladders leads to the emergence of a new characteristic length L in the otherwise scale-free Tomonaga-Luttinger liquid (serving as the effective low-energy model). This results in universal LT scaling of staggered susceptibilities. Comparison of simulation results with experimental phase diagrams of prototypical spin ladder compounds bis(2,3-dimethylpyridinium)tetrabromocuprate(II) (DIMPY) and bis(piperidinium)tetrabromocuprate(II) (BPCB) yields excellent agreement.
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Publication: Phys. Rev. Lett. 128, 237201 – Published 10 June 2022
Presenters
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Stanislaw Galeski
Max Planck Institute for Plasma Physics, University Bonn
Authors
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Stanislaw Galeski
Max Planck Institute for Plasma Physics, University Bonn
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Kirill Povarov
ETH Zurich
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Dominic Blosser
ETH Zurich
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Severian Gvasaliya
ETH Zurich
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Rafa? Wawrzy?czak
Max Planck Institute for Plasma Physics
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Jacques Ollivier
Institut Laue-Langevin
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Johannes Gooth
IBM Research - Zurich, University Bonn
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Andrey Zheludev
ETH Zurich