论文标题

磁相跃迁引起的BAFEF4中的铁电偏振,室温弱铁磁

Magnetic phase transition induced ferroelectric polarization in BaFeF4 with room temperature weak ferromagnetism

论文作者

Zhang, Fan, Tang, Yongsen, Li, Ranran, Liu, Tianyu, Xu, Dingshi, Chen, Yinzhu, Niu, Ben, Yuan, Shijun, Qin, Sai, Yan, Zhibo, Du, Jun, Wu, Di, Li, Qi, Dong, Shuai, Xu, Qingyu

论文摘要

BAMF4(M = FE,CO,NI和MN)家族是典型的多用量材料,在液氮温度周围具有抗fiferromagnetism。在这项工作中,通过固态反应制备了多晶Bafef4。 Fe的轻微缺乏导致+2和+3的价状态共存,促进电子通过中间F离子在相邻的Fe2 +和Fe3 +离子之间跳跃,从而导致双重交换相互作用与室温高于室温的弱铁磁相互作用。在零场冷却和场冷水温度依赖性磁化曲线之间约170 K处的分叉表明,二维抗抗铁磁性的发作,该抗通过磁力在约125 K下完成,突然下降。 Despite the fact of type-I multiferroic, its magnetoelectricity can be evidenced by the pyroelectric current, which shows a peak starting at about 170 K and finishing at about 125 K. The saturated ferroelectric polarization change of around 34 μC/m2 is observed, which is switchable by the reversed poling electric field and decreases to about 30 μC/m2 under a magnetic field of 90 kOe.该磁电视性可以通过第一原理计算来定性地再现。我们的结果代表了在铁电氟化物中寻找高温多性精神分子的实质性进展。

BaMF4 (M=Fe, Co, Ni and Mn) family are typical multiferroic materials, having antiferromagnetism at around liquid nitrogen temperature. In this work, polycrystalline BaFeF4 has been prepared by solid state reaction. The slight deficiency of Fe leads to the coexistence of valence states of +2 and +3, facilitating the electrons to hop between the neighboring Fe2+ and Fe3+ ions through the middle F- ion, leading to the strong double exchange interaction with weak ferromagnetism above room temperature. A bifurcation at about 170 K between the zero-field-cooled and field-cooled temperature dependent magnetization curves indicates the onset of 2-dimensional antiferromagnetism, which is completed at about 125 K with the sudden drop of magnetization. Despite the fact of type-I multiferroic, its magnetoelectricity can be evidenced by the pyroelectric current, which shows a peak starting at about 170 K and finishing at about 125 K. The saturated ferroelectric polarization change of around 34 μC/m2 is observed, which is switchable by the reversed poling electric field and decreases to about 30 μC/m2 under a magnetic field of 90 kOe. This magnetoelectricity can be qualitatively reproduced by first-principles calculations. Our results represent substantial progress to search for high-temperature multiferroics in ferroelectric fluorides.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源