4.2 Article

Axion-matter coupling in multiferroics

期刊

PHYSICAL REVIEW RESEARCH
卷 3, 期 3, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevResearch.3.033236

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资金

  1. research environment grant Detecting Axion Dark Matter In The Sky And In The Lab (AxionDM) - Swedish Research Council (VR) [2019-02337]
  2. University of Connecticut
  3. European Research Council under the European Unions Seventh Framework [ERS-2018-SYG 810451 HERO]
  4. VILLUM FONDEN via the Centre of Excellence for Dirac Materials [11744]
  5. Quantum Information Science Enabled Discovery (QuantISED) for High Energy Physics [KA2401032]
  6. National Science Foundation [ACI-1548562]
  7. Office of Science, Office of Basic Energy Sciences, of the U.S. Department of Energy [DE-AC0205CH11231]
  8. DOE [DOE: DE-FG02-07ER46382]

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Multiferroics are materials with multiple ferroic orders, capable of exhibiting a magnetoelectric effect where magnetic and ferroelectric polarizations couple linearly. Fluctuations near the ferromagnetic transition temperature can enhance the axion-induced magnetic response.
Multiferroics (MFs) are materials with two or more ferroic orders, like spontaneous ferroelectric and ferromagnetic polarizations. Such materials can exhibit a magnetoelectric effect whereby magnetic and ferroelectric polarizations couple linearly, reminiscent of, but not identical to the electromagnetic E . B axion coupling. Here we point out a possible mechanism in which an external dark matter axion field couples linearly to ferroic orders in these materials without external applied fields. We find the magnetic response to be linear in the axion-electron coupling. At temperatures close to the ferromagnetic transition fluctuations can lead to an enhancement of the axion-induced magnetic response. Relevant material candidates such as the Lu-Sc hexaferrite family are discussed.

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