Control of magnetic relaxation by electric-field-induced ferroelectric phase transition and inhomogeneous domain switching

  • Tianxiang Nan
  • , Satoru Emori
  • , Bin Peng
  • , Xinjun Wang
  • , Zhongqiang Hu
  • , Li Xie
  • , Yuan Gao
  • , Hwaider Lin
  • , Jie Jiao
  • , Haosu Luo
  • , David Budil
  • , John G. Jones
  • , Brandon M. Howe
  • , Gail J. Brown
  • , Ming Liu
  • , Nian Sun

Research output: Contribution to journalArticlepeer-review

8 Scopus citations

Abstract

Electric-field modulation of magnetism in strain-mediated multiferroic heterostructures is considered a promising scheme for enabling memory and magnetic microwave devices with ultralow power consumption. However, it is not well understood how electric-field-induced strain influences magnetic relaxation, an important physical process for device applications. Here, we investigate resonant magnetization dynamics in ferromagnet/ferroelectric multiferroic heterostructures, FeGaB/PMN-PT and NiFe/PMN-PT, in two distinct strain states provided by electric-field-induced ferroelectric phase transition. The strain not only modifies magnetic anisotropy but also magnetic relaxation. In FeGaB/PMN-PT, we observe a nearly two-fold change in intrinsic Gilbert damping by electric field, which is attributed to strain-induced tuning of spin-orbit coupling. By contrast, a small but measurable change in extrinsic linewidth broadening is attributed to inhomogeneous ferroelastic domain switching during the phase transition of the PMN-PT substrate.

Original languageEnglish
Article number012406
JournalApplied Physics Letters
Volume108
Issue number1
DOIs
StatePublished - 4 Jan 2016

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