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近场红外振动动力学与尖端增强退相干。

Near-field infrared vibrational dynamics and tip-enhanced decoherence.

机构信息

Department of Physics, University of Colorado, Boulder, Colorado 80309, United States.

出版信息

Nano Lett. 2013 Apr 10;13(4):1588-95. doi: 10.1021/nl304804p. Epub 2013 Mar 6.

DOI:10.1021/nl304804p
PMID:23387347
Abstract

Ultrafast infrared spectroscopy can reveal the dynamics of vibrational excitations in matter. In its conventional far-field implementation, however, it provides only limited insight into nanoscale sample volumes due to insufficient spatial resolution and sensitivity. Here, we combine scattering-scanning near-field optical microscopy (s-SNOM) with femtosecond infrared vibrational spectroscopy to characterize the coherent vibrational dynamics of a nanoscopic ensemble of C-F vibrational oscillators of polytetrafluoroethylene (PTFE). The near-field mode transfer between the induced vibrational molecular coherence and the metallic scanning probe tip gives rise to a tip-mediated radiative IR emission of the vibrational free-induction decay (FID). By increasing the tip–sample coupling, we can enhance the vibrational dephasing of the induced coherent vibrational polarization and associated IR emission, with dephasing times up to T2(NF) is approximately equal to 370 fs in competition against the intrinsic far-field lifetime of T2(FF) is approximately equal to 680 fs as dominated by nonradiative damping. Near-field antenna-coupling thus provides for a new way to modify vibrational decoherence. This approach of ultrafast s-SNOM enables the investigation of spatiotemporal dynamics and correlations with nanometer spatial and femtosecond temporal resolution.

摘要

超快红外光谱学可以揭示物质中振动激发的动力学。然而,在其传统的远场实现中,由于空间分辨率和灵敏度不足,它只能提供对纳米级样品体积的有限了解。在这里,我们将散射扫描近场光学显微镜 (s-SNOM) 与飞秒红外振动光谱学相结合,以表征聚四氟乙烯 (PTFE) 的纳米级 C-F 振动振子的相干振动动力学。在诱导的振动分子相干性和金属扫描探针尖端之间的近场模式传递引起了振动自由感应衰减 (FID) 的尖端介导的辐射红外发射。通过增加尖端-样品耦合,我们可以增强诱导的相干振动极化和相关的 IR 发射的振动退相,退相时间高达 T2(NF) 约为 370 fs,与由非辐射阻尼主导的固有远场寿命 T2(FF) 约为 680 fs 竞争。因此,近场天线耦合提供了一种新的方法来修饰振动退相干。这种超快 s-SNOM 的方法能够以纳米级空间分辨率和飞秒时间分辨率研究时空动力学和相关性。

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