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Effects of size and oxygen annealing on the multiferroic behavior of bismuth ferrite nanoparticles

机译:尺寸和氧退火对铁酸铋铋纳米粒子多铁性行为的影响

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We have compared the multiferroic behavior in different-sized BiFeO3 nanoparticles (11–29 nm) prepared by a solution evaporation method. The effects of oxygen vacancies on the behavior of phase pure BiFeO3 have been studied for particles prepared under two different annealing environments, air and oxygen. We find that BiFeO3 nanoparticles show weak ferromagnetism at room temperature which increases with decreasing particle size. However, the effects are determined not to be related to the presence of more oxygen vacancies, since oxygen annealing increases the magnetic moment in this system. In dielectric studies, we observe clear evidence for magnetoelectric coupling with the imaginary part of dielectric constant exhibiting a clear anomaly around the magnetic transition temperature (T ~ 560 K). In high temperature resistivity measurements insulating and activated resistivity behavior is observed with the activation energies being lower for T T N. The increased ferromagnetism in smaller particles is explained in terms of suppression of the antiferromagnetic spin spiral whereas oxygen annealing actually leads in our case to an improvement of the crystallinity.
机译:我们已经比较了溶液蒸发法制备的不同尺寸的BiFeO3 纳米粒子(11-29 nm)中的多铁性行为。研究了在两种不同的退火环境(空气和氧气)下制备的颗粒中氧空位对纯相BiFeO3 行为的影响。我们发现BiFeO3 纳米粒子在室温下表现出弱的铁磁性,并且随着粒径的减小而增加。然而,由于氧退火增加了该系统中的磁矩,因此确定该影响与更多氧空位的存在无关。在介电研究中,我们观察到磁电耦合的清晰证据,其中介电常数的虚部在磁转变温度(T〜560 K)附近表现出明显的异常。在高温电阻率测量中,观察到绝缘电阻率和活化电阻率行为,其中活化能在T 较低。较小颗粒中铁磁性的增加是通过抑制反铁磁自旋螺旋来解释的,而在我们的情况下,氧退火实际上会导致结晶度的提高。

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