首页> 美国卫生研究院文献>Scientific Reports >Strain effect on orbital and magnetic structures of Mn ions in epitaxial Nd0.35Sr0.65MnO3/SrTiO3 films using X-ray diffraction and absorption
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Strain effect on orbital and magnetic structures of Mn ions in epitaxial Nd0.35Sr0.65MnO3/SrTiO3 films using X-ray diffraction and absorption

机译:X射线衍射和吸收对Nd0.35Sr0.65MnO3 / SrTiO3外延膜中Mn离子轨道和磁结构的应变效应

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摘要

This study probes the temperature-dependent strain that is strongly correlated with the orbital and magnetic structures of epitaxial films of Nd0.35Sr0.65MnO3 (NSMO) that are fabricated by pulsed laser deposition with two thicknesses, 17 (NS17) and 103 nm (NS103) on SrTiO3 (STO) substrate. This investigation is probed using X-ray diffraction (XRD) and absorption-based techniques, X-ray linear dichroism (XLD) and the X-ray magnetic circular dichroism (XMCD). XRD indicates a significant shift in the (004) peak position that is associated with larger strain in NS17 relative to that of NS103 at both 30 and 300 K. Experimental and atomic multiplet simulated temperature-dependent Mn L3,2-edge XLD results reveal that the stronger strain in a thinner NS17 film causes less splitting of Mn 3d eg state at low temperature, indicating an enhancement of orbital fluctuations in the band above the Fermi level. This greater Mn 3d orbital fluctuation can be the cause of both the enhanced ferromagnetism (FM) as a result of spin moments and the reduced Néel temperature of >C-type antiferromagnetism (AFM) in NS17, leading to the FM coupling of the canted-antiferromagnetism (FM-cAFM) state in NSMO/STO epitaxial films at low temperature (T = 30 K). These findings are also confirmed by Mn L3,2-edge XMCD measurements.
机译:这项研究探索了与温度相关的应变,该应变与Nd0.35Sr0.65MnO3(NSMO)的外延膜的轨道和磁性结构密切相关,该外延膜是通过脉冲激光沉积以17(NS17)和103 nm(NS103)两种厚度制造的)在SrTiO3(STO)基板上。使用X射线衍射(XRD)和基于吸收的技术,X射线线性二向色性(XLD)和X射线磁性圆二向色性(XMCD)探索了这一研究。 XRD表示(004)峰位置发生了显着变化,这与在30 K和300 K时NS17相对于NS103的较大应变相关;实验和原子多重模拟的温度依赖性Mn L3,2-edge XLD结果表明: NS17薄膜越薄,应变越强,导致Mn 3d的分裂越少,例如在低温下的状态,这表明费米能级以上的能带中的轨道波动增强了。更大的Mn 3d轨道波动可能是自旋矩导致铁磁性(FM)增强和NS17中> C 型反铁磁性(AFM)的Néel温度降低的原因,导致低温(T = axial30 K)下NSMO / STO外延膜中的倾斜反磁性(FM-cAFM)状态的FM耦合。 Mn L3,2-edge XMCD测量也证实了这些发现。

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