4.5 Article

Strain relaxation dynamics of multiferroic orthorhombic manganites

Journal

JOURNAL OF PHYSICS-CONDENSED MATTER
Volume 33, Issue 12, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1361-648X/abbdba

Keywords

multiferroics; strain coupling; magnetoelastic relaxation

Funding

  1. EPSRC (UK) [EP/P024904/1]
  2. Natural Environment Research Council [NE/B505738/1, NE/F017081/1]
  3. Engineering and Physical Sciences Research Council [EP/I036079/1]
  4. EPSRC, UK [EP/T005963/1]
  5. NTNU Onsager Fellowship programme
  6. VEGA (Slovakia) [2/0137/19]
  7. [NORTE-01-0145-FEDER-022096]
  8. [UID/NAN/50024/2019]
  9. [SK-PT-2015-0030]
  10. EPSRC [EP/T005963/1, EP/I036079/1, EP/P024904/1] Funding Source: UKRI
  11. NERC [NE/F017081/1] Funding Source: UKRI

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Resonant ultrasound spectroscopy has been used to characterize strain coupling and relaxation behavior associated with magnetic/magnetoelectric phase transitions in GdMnO3, TbMnO3 and TbMn0.98Fe0.02O3. The results show anomalies in dielectric and electrical properties, as well as freezing processes related to polaron mechanisms. The study confirms typical patterns for multiferroic orthorhombic RMnO3 perovskites, with strain effects being important in defining magnetoelectric properties.
Resonant ultrasound spectroscopy has been used to characterise strain coupling and relaxation behavior associated with magnetic/magnetoelectric phase transitions in GdMnO3, TbMnO3 and TbMn0.98Fe0.02O3 through their influence on elastic/anelastic properties. Acoustic attenuation ahead of the paramagnetic to colinear-sinusoidal incommensurate antiferromagnetic transition at similar to 41 K correlates with anomalies in dielectric properties and is interpreted in terms of Debye-like freezing processes. A loss peak at similar to 150 K is related to a steep increase in electrical conductivity with a polaron mechanism. The activation energy, E-a, of greater than or similar to 0.04 eV from a loss peak at similar to 80 K is consistent with the existence of a well-defined temperature interval in which the paramagnetic structure is stabilised by local, dynamic correlations of electric and magnetic polarisation that couple with strain and have relaxation times in the vicinity of similar to 10(-6) s. Comparison with previously published data for Sm0.6Y0.4MnO3 confirms that this pattern may be typical for multiferroic orthorhombic RMnO3 perovskites (R = Gd, Tb, Dy). A frequency-dependent loss peak near 10 K observed for TbMnO3 and TbMn0.98Fe0.02O3, but not for GdMnO3, yielded E-a > similar to 0.002 eV and is interpreted as freezing of some magnetoelastic component of the cycloid structure. Small anomalies in elastic properties associated with the incommensurate and cycloidal magnetic transitions confirm results from thermal expansion data that the magnetic order parameters have weak but significant coupling with strain. Even at strain magnitudes of similar to 0.1-1 parts per thousand, polaron-like strain effects are clearly important in defining the development and evolution of magnetoelectric properties in these materials. Strains associated with the cubic-orthorhombic transition due to the combined Jahn-Teller/octahedral tilting transition in the vicinity of 1500 K are 2-3 orders of magnitude greater. It is inevitable that ferroelastic twin walls due to this transition would have significantly different magnetoelectric properties from homogeneous domains due to magnetoelastic coupling with steep strain gradients.

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