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Room Temperature Ferrimagnetism and Ferroelectricity in Strained Thin Films of BiFe0.5Mn0.5O3

机译:BiFe0.5Mn0.5O3薄膜中的室温亚铁磁性和铁电

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摘要

Highly strained films of BiFe0.5Mn0.5O3 (BFMO) grown at very low rates by pulsed laser deposition were demonstrated to exhibit both ferrimagnetism and ferroelectricity at room temperature and above. Magnetisation measurements demonstrated ferrimagnetism (TC ∼ 600K), with a room temperature saturation moment (MS) of up to 90 emu/cc (∼ 0.58 μB/f.u) on high quality (001) SrTiO3. X-ray magnetic circular dichroism showed that the ferrimagnetism arose from antiferromagnetically coupled Fe3+ and Mn3+. While scanning transmission electron microscope studies showed there was no long range ordering of Fe and Mn, the magnetic properties were found to be strongly dependent on the strain state in the films. The magnetism is explained to arise from one of three possible mechanisms with Bi polarization playing a key role. A signature of room temperature ferroelectricity in the films was measured by piezoresponse force microscopy and was confirmed using angular dark field scanning transmission electron microscopy. The demonstration of strain induced, high temperature multiferroism is a promising development for future spintronic and memory applications at room temperature and above.
机译:通过脉冲激光沉积以非常低的速率生长的高应变BiFe0.5Mn0.5O3(BFMO)薄膜在室温及更高温度下显示出亚铁磁性和铁电性。磁化测量显示亚铁磁性(TC〜600K),在高质量(001)SrTiO3上的室温饱和矩(MS)高达90 emu / cc(〜0.58μB/ f.u)。 X射线磁性圆二色性表明,亚铁磁性是由反铁磁耦合的Fe 3 + 和Mn 3 + 引起的。扫描透射电子显微镜研究表明,Fe和Mn没有长程有序排列,但发现磁性能强烈依赖于薄膜的应变状态。磁性被解释为是由三种可能的机制之一引起的,其中Bi极化起关键作用。膜中室温铁电的特征通过压电响应力显微镜测量,并使用角暗场扫描透射电子显微镜确认。对于在室温及更高温度下未来的自旋电子学和存储器应用,应变诱发的高温多铁性的演示是一个有前途的发展。

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