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首页> 外文期刊>Nature nanotechnology >Probing ultrafast spin dynamics with optical pump–probe scanning tunnelling microscopy
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Probing ultrafast spin dynamics with optical pump–probe scanning tunnelling microscopy

机译:用光学泵浦-探针扫描隧道显微镜探测超快自旋动力学

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Studies of spin dynamics in low-dimensional systems are important from both fundamental and practical points of view~(1,2). Spin-polarized scanning tunnelling microscopy allows localized spin dynamics to be characterized and plays important roles in nanoscale science and technology~(3–5). However, nanoscale analysis of the ultrafast dynamics of itinerant magnetism, as well as its localized characteristics, should be pursued to advance further the investigation of quantum dynamics in functional structures of small systems. Here, we demonstrate the optical pump–probe scanning tunnelling microscopy technique, which enables the nanoscale probing of spin dynamics with the temporal resolution corresponding, in principle, to the optical pulse width. Spins are optically oriented using circularly polarized light, and their dynamics are probed by scanning tunnelling microscopy based on the optical pump–probe method. Spin relaxation in a single quantum well with a width of 6 nm was observed with a spatial resolution of ~1 nm. In addition to spin relaxation dynamics, spin precession, which provides an estimation of the Landé g factor, was observed successfully.
机译:从基本和实际的观点来看,低维系统中自旋动力学的研究都是重要的〜(1,2)。自旋极化扫描隧道显微镜可以表征局部自旋动力学,并在纳米级科学技术中发挥重要作用〜(3-5)。但是,应进行纳米级的巡回磁性超快速动力学及其局部特征的分析,以进一步推进小型系统功能结构中量子动力学的研究。在这里,我们演示了光学泵浦-探针扫描隧道显微镜技术,该技术可实现自旋动力学的纳米级探测,其时间分辨率原则上对应于光脉冲宽度。自旋通过圆偏振光进行光学定向,并通过基于光学泵浦-探针法的扫描隧道显微镜检查其动力学。在单个量子阱中观察到自旋弛豫,其宽度为6 nm,空间分辨率约为1 nm。除自旋弛豫动力学外,还成功观察到了自旋进动,它提供了对Landég因子的估计。

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