| Literature DB >> 27185343 |
S E Rowley1,2, Yi-Sheng Chai3, Shi-Peng Shen3, Young Sun3, A T Jones1, B E Watts4, J F Scott1,5.
Abstract
BaFe12O19 is a popular M-type hexaferrite with a Néel temperature of 720 K and is of enormous commercial value ($3 billion/year). It is an incipient ferroelectric with an expected ferroelectric phase transition extrapolated to lie at 6 K but suppressed due to quantum fluctuations. The theory of quantum criticality for such uniaxial ferroelectrics predicts that the temperature dependence of the electric susceptibility χ diverges as 1/T(3), in contrast to the 1/T(2) dependence found in pseudo-cubic materials such as SrTiO3 or KTaO3. In this paper we present evidence of the susceptibility varying as 1/T(3), i.e. with a critical exponent γ = 3. In general γ = (d + z - 2)/z, where the dynamical exponent for a ferroelectric z = 1 and the dimension is increased by 1 from deff = 3 + z to deff = 4 + z due to the effect of long-range dipole interactions in uniaxial as opposed to multiaxial ferroelectrics. The electric susceptibility of the incipient ferroelectric SrFe12O19, which is slightly further from the quantum phase transition is also found to vary as 1/T(3).Entities:
Year: 2016 PMID: 27185343 PMCID: PMC4869023 DOI: 10.1038/srep25724
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Crystal and multiferroic structures of M-type hexaferrites.
(a) The crystal and magnetic structures of M-type Ba- and Sr- hexaferrites. The arrows represent the magnetic moments of Fe3+ ions. (b) The off-equator displacements of Fe3+ in the FeO5 bypyramidal sites induce uniaxial electric dipoles along c axis. Quantum fluctuations between two 4e sites prevent the onset of long-range ferroelectric ordering down to the lowest temperature. (c) The single-crystal x-ray diffraction patterns at room temperature of prepared BaFe12O19 and SrFe12O19 crystals.
Figure 2Dielectric susceptibility measurements along the c-axis in Ba and Sr M-type hexaferrites.
The main figures in (a,b) show the temperature depence of the inverse electric susceptibility 1/χ for BaFe12O19 and SrFe12O19 respectively. The classical Curie-Weiss like behaviour (linear part of the curve) at higher temperaures crosses over to a different form below the characteristic temperature scale T*/10 due to the proximity of a ferroelectric quantum phase transition. The insets in (a,b) show a magnification of the low temperature region of 1/χ against temperature in which anomolous upturns are observed below the temperature scale Tx/10. In (c,d) the inverse electric susceptibily is plotted against T3 over the range of temperatures between the anomolous upturn at low T and the classical Curie-Weiss regime at high T, i.e. between T/10 and T*/10 as explained in the text. This is between 6 K and 15 K for BaFe12O19 in (c) and between 20 K and 35 K for SrFe12O19 in (d). The dashed straight lines are guides to the eye. The lower insets in (c,d) confirm that no T2 dependence of 1/χ fits the data which would be expected for a multi-axial as opposed to a uniaxial ferroelectric quantum critical system. Recent attempts20 by others to fit data over a wide temperature range to a single exponent are in our opinion not reliable tests.