4.8 Article

Continuum of quantum fluctuations in a three-dimensional S=1 Heisenberg magnet

Journal

NATURE PHYSICS
Volume 15, Issue 1, Pages 54-+

Publisher

NATURE PUBLISHING GROUP
DOI: 10.1038/s41567-018-0317-3

Keywords

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Funding

  1. US Department of Energy, Office of Basic Energy Sciences, Division of Material Sciences and Engineering [DE-FG02-08ER46544]
  2. Gordon and Betty Moore Foundation under the EPIQS program [GBMF4532]
  3. National Science Foundation [DMR-1508249]
  4. Paul Scherrer Institut
  5. State of Maryland

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Conventional crystalline magnets are characterized by symmetry breaking and normal modes of excitation called magnons, with quantized angular momentum (h) over bar. Neutron scattering correspondingly features extra magnetic Bragg diffraction at low temperatures and dispersive inelastic scattering associated with single magnon creation and annihilation. Exceptions are anticipated in so-called quantum spin liquids, as exemplified by the one-dimensional spin-1/2 chain, which has no magnetic order and where magnons accordingly fractionalize into spinons with angular momentum (h) over bar /2. This is spectacularly revealed by a continuum of inelastic neutron scattering associated with two-spinon processes. Here, we report evidence for these key features of a quantum spin liquid in the three-dimensional antiferromagnet NaCaNi2F7. We show that despite the complication of random Na1+-Ca2+ charge disorder, NaCaNi2F7, is an almost ideal realization of the spin-1 antiferromagnetic Heisenberg model on a pyrochlore lattice. Magnetic Bragg diffraction is absent and 90% of the neutron spectral weight forms a continuum of magnetic scattering with low-energy pinch points, indicating NaCaNi2F7, is in a Coulomb-like phase. Our results demonstrate that disorder can act to freeze only the lowest-energy magnetic degrees of freedom; at higher energies, a magnetic excitation continuum characteristic of fractionalized excitations persists.

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