| Literature DB >> 26671575 |
Shuang Zhou1, Ji Wang2,3, Xiaofeng Chang2,4, Shuangbao Wang2,4, Bin Qian5, Zhida Han5, Qingyu Xu1,2, Jun Du2,3, Peng Wang2,4, Shuai Dong1.
Abstract
Multiferroic BaMnF4 powder was prepared by hydrothermal method. Hysteretic field dependent magnetization curve at 5 K confirms the weak ferromagnetism aroused from the canted antiferromagnetic spins by magnetoelectric coupling. The blocking temperature of 65 K for exchange bias coincides well with the peak at 65 K in the zero-field cooled temperature-dependent magnetization curve, which has been assigned to the onset temperature of two-dimensional antiferromagnetism. An upturn kink of exchange field and coercivity with decreasing temperature was observed from 40 K to 20 K, which is consistent with the two-dimensional to three-dimensional antiferromagnetic transition at Néel temperature (~26 K). In contrast to the conventional mechanism of magnetization pinned by interfacial exchange coupling in multiphases, the exchange bias in BaMnF4 is argued to be a bulk effect in single phase, due to the magnetization pinned by the polarization through magnetoelectric coupling.Entities:
Year: 2015 PMID: 26671575 PMCID: PMC4680875 DOI: 10.1038/srep18392
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The schematic crystal structure of BaMnF4 in (a) bc plane and (b) ab plane.(c) the AFM structure, where the AFM axis lies in bc plane and is directed about 9° from b axis.
Figure 2(a) The XRD pattern and (b) SEM image of BaMnF4 powder. (c) The electron diffraction pattern from one BaMnF4 sheet with electron beam perpendicular to the sheet, as shown in the inset.
Figure 3(a) ZFC and FC M-T curves measured under H = 200 Oe (main plot). ZFC M-T curve measured under H = 50 Oe (inset). (b) ZFC and FC M-T curves measured under H = 50 kOe.
Figure 4AC magnetic susceptibility M’ (real part) of BaMnF4 measured under various frequencies.
Inset: the imaginary part M”. It should be noted that the value of M” is too small to be measured under low frequencies.
Figure 5(a) M-H loops of BaMnF4 at T = 300 K and T = 5 K after cooling with a field of 200 Oe with the enlarged view in left inset. Right inset: the enlarged view of M-H loop measured with cooling field of −200 Oe. (b) Temperature dependence of HE and HC. The inset shows the enlarge view of M-H loop measured at 5 K with maximum field (Hmax) of 10 kOe after cooling under field of 200 Oe. The arrow indicates the closure of hysteresis loop at Hirr. (c) Enlarged view of M-H loops measured under different Hmax at 5 K after cooling under field of 200 Oe. The inset shows the dependence of HE and HC on Hmax.
Figure 6The dependence of HE and HC on Hcool, measured at 5 K with maximum field of 10 kOe.
Figure 7The illustration of magnetoelectricity induced EB.
With given polarization Pa, the canting of neighboring AFM spins S1 and S2 can be affected by the cooling field direction due to Zeeman energy of net moment Mc. The dashed lines are the easy axes of neighboring Mn ions.