论文标题
COFE2O4/PMN-PT纳米复合材料中的自旋 - 音波耦合与磁电效应之间的相关性:拉曼光谱和XMCD研究
Correlation between spin-phonon coupling and magneto-electric effects in CoFe2O4/PMN-PT nanocomposite: Raman Spectroscopy and XMCD study
论文作者
论文摘要
我们已经通过COFE2O4/PMN-PT复合系统中的应变相互作用研究了晶格与自旋的耦合。 X射线衍射和拉曼光谱研究表明,PMN-PT的Curie温度(450 K)在COFE2O4Lattice中进行了显着修改。随后,COFE2O4/PMN-PT复合材料揭示了PMN-PT(450 K)TC的磁矩突然下降。然而,在该温度上,独立的COFE2O4PhasePlaySplaySplaySplaySplaySplaySplayStypical磁磁行为。这些发现由于COFE2O4和PMN-PT之间的界面应变转移而建立了自旋晶格耦合。菌株的插入导致磁电耦合,通过测量启发和未拨入的COFE2O4/PMN-PT复合样品的电场和磁场系数来证明磁性耦合。 X射线磁性圆形二色性(XMCD)分析表明,阳离子(Fe3+/CO2+)重新分布发生在电螺旋的COFE2O4/PMN-PT复合材料中的四面体和八面体位置上,从而确认了组合中磁和电的耦合。磁电耦合系数α与DC磁场曲线揭示了磁滞行为和电振林后增强的α值,这起源于应变诱导的螺旋样品中复合材料的修饰。这些发现表明,旋转晶格耦合的存在可能导致通过COFE2O4/PMN-PT复合材料中的应变相互作用引起强磁电效应的机理。
We have investigated the coupling of lattice with spin via strain interactions in the CoFe2O4/PMN-PT composite system. X-ray diffraction and Raman spectroscopic studies illustrate a remarkable modification in CoFe2O4lattice across Curie temperature (450 K) of PMN-PT. Subsequently, CoFe2O4/PMN-PT composite reveals a sudden drop in magnetic moment across Tc of PMN-PT (450 K). However,theindependent CoFe2O4phasedisplaystypical ferromagnetic behaviour across this temperature. These findings establish spin-lattice coupling owing to th interfacial strain transfer between CoFe2O4 and PMN-PT in composite. The strain intractions leads to magneto-electric coupling, evidenced by measuring magentization and magneto-electric coefficient for the electric field poled and unploed CoFe2O4/PMN-PT composite samples. X-ray magnetic circular dichroism (XMCD) analysis establishes that the cation (Fe3+/Co2+) redistribution occurs on tetrahedral and octahedral site in the electrically poled CoFe2O4/PMN-PT composite, confirming the coupling between magnetic and electric ordering in the composite. The magneto-electric coupling coefficient alpha vs dc magnetic field curves revealed hysteretic behavior and enhanced α values after electric poling, which originates from the strain induced modifications in the magnetic domains configuration of composite in the poled samples. These findings suggest that the existence of spin lattice coupling may leads to the mechanism of strong magneto-electric effects via strain interactions in CoFe2O4/PMN-PT composite.