4.8 Article

Manifestation of magnetic quantum fluctuations in the dielectric properties of a multiferroic

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NATURE COMMUNICATIONS
卷 5, 期 -, 页码 -

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NATURE PUBLISHING GROUP
DOI: 10.1038/ncomms5419

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资金

  1. CRI program [2010-0018300]
  2. BSR program [2009-0083512]
  3. Fundamental R&D program for the Core Technology of Materials
  4. NSF [DMR-0654118]
  5. State of Florida
  6. US DOE-BES [LANLF100]
  7. DOE-BES [DE-SC0002613]
  8. DOE [DE-FG02-07ER46382]
  9. NRF [2013R1A2A1A01006430]

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Insulating magnets can display novel signatures of quantum fluctuations as similar to the case of metallic magnets. However, their weak spin-lattice coupling has made such observations challenging. Here we find that antiferromagnetic (AF) quantum fluctuations manifest in the dielectric properties of multiferroic Ba2CoGe2O7, where a ferroelectric polarization develops concomitant to an AF ordering. Upon application of a magnetic field (H), dielectric constant shows a characteristic power-law dependence near absolute zero temperature and close to the critical field H-c = 37.1 T due to enhanced AF quantum fluctuations. When H>H-c, the dielectric constant shows the temperature-dependent anomalies that reflect a crossover from a field-tuned quantum critical to a gapped spin-polarized state. We uncover theoretically that a linear relation between AF susceptibility and dielectric constant stems from the generic magnetoelectric coupling and directly explains the experimental findings, opening a new pathway for studying quantum criticality in condensed matter.

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