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超快纳米成像技术研究 VO2 的光诱导相变动力学。

Ultrafast Nanoimaging of the Photoinduced Phase Transition Dynamics in VO2.

机构信息

Department of Physics, Department of Chemistry, and JILA, University of Colorado , Boulder, Colorado 80309, United States.

Department of Chemistry, University of North Carolina , Chapel Hill, North Carolina 27514, United States.

出版信息

Nano Lett. 2016 May 11;16(5):3029-35. doi: 10.1021/acs.nanolett.5b05313. Epub 2016 Apr 28.

Abstract

Many phase transitions in correlated matter exhibit spatial inhomogeneities with expected yet unexplored effects on the associated ultrafast dynamics. Here we demonstrate the combination of ultrafast nondegenerate pump-probe spectroscopy with far from equilibrium excitation, and scattering scanning near-field optical microscopy (s-SNOM) for ultrafast nanoimaging. In a femtosecond near-field near-IR (NIR) pump and mid-IR (MIR) probe study, we investigate the photoinduced insulator-to-metal (IMT) transition in nominally homogeneous VO2 microcrystals. With pump fluences as high as 5 mJ/cm(2), we can reach three distinct excitation regimes. We observe a spatial heterogeneity on ∼50-100 nm length scales in the fluence-dependent IMT dynamics ranging from <100 fs to ∼1 ps. These results suggest a high sensitivity of the IMT with respect to small local variations in strain, doping, or defects that are difficult to discern microscopically. We provide a perspective with the distinct requirements and considerations of ultrafast spatiotemporal nanoimaging of phase transitions in quantum materials.

摘要

许多关联物质的相变表现出空间不均匀性,预计会对相关超快动力学产生尚未探索的影响。在这里,我们展示了超快非简并泵浦-探测光谱学与远离平衡激发以及散射扫描近场光学显微镜 (s-SNOM) 的结合,用于超快纳米成像。在飞秒近场近红外 (NIR) 泵浦和中红外 (MIR) 探针研究中,我们研究了名义上均匀的 VO2 微晶体中的光致绝缘到金属 (IMT) 转变。在高达 5 mJ/cm2 的泵浦光强下,我们可以达到三个不同的激发状态。我们在依赖于光强的 IMT 动力学中观察到了约 50-100nm 长度尺度上的空间不均匀性,范围从 <100fs 到 ∼1ps。这些结果表明,IMT 对微观上难以识别的应变、掺杂或缺陷的微小局部变化非常敏感。我们提供了一个视角,说明了量子材料中相变的超快时空纳米成像的独特要求和考虑因素。

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