Spin-wave propagation in α -Fe 2 O 3 nanorods: the effect of confinement and disorder
Author(s) -
David Cortie,
Gilberto Casillas,
A. D. Squires,
Richard A. Mole,
Xiaolin Wang,
Yun Liu,
YenHua Chen,
Dehong Yu
Publication year - 2019
Publication title -
journal of physics condensed matter
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.908
H-Index - 228
eISSN - 1361-648X
pISSN - 0953-8984
DOI - 10.1088/1361-648x/ab04ca
Subject(s) - nanorod , condensed matter physics , spin wave , magnon , ferromagnetism , quasiparticle , physics , neutron , spectroscopy , scattering , inelastic neutron scattering , materials science , inelastic scattering , molecular physics , nanotechnology , optics , nuclear physics , quantum mechanics , superconductivity
Spin-wave excitations in α-Fe<sub>2</sub>O<sub>3</sub> nanorods were directly detected using time-of-flight inelastic neutron spectroscopy. The dispersive magnon features are compared with those in bulk α-Fe<sub>2</sub>O<sub>3</sub> particles at various temperatures to highlight differences in mode intensity and width. The interchanged spectral intensities in the nanorod are a consequence of a suppressed spin orientation, and this is also evident in the neutron diffraction which demonstates that the weak ferromagnetic phase survives to 1.5 K. Transmission electron microscopy show that the ellipsoidal particles are single-crystalline with a typical length of 300 ± 100 nm and diameter of 60 ± 10 nm. ThThe main magnon features are similar in bulk and nanoforms and can be explained using a model Hamiltonian based on Samuelson and Shirane's classical theory with exchange constants of J1=-1.03 meV, J2= -0.28 meV J3= 5.12 meV and J4=4.00 meV. Numerical simulations show that two distinct mechanisms may contribute to the magnon line broadening in the nanorods: a distribution of exchange interactions caused by disorder, and a shortened quasiparticle lifetime caused by the scattering of spin waves at surfaces.
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