Department of Physics, Department of Chemistry, and Joint Institute for Lab Astrophysics (JILA), University of Colorado , Boulder, Colorado 80309, United States.
Brazilian Synchrotron Light Laboratory , Campinas, 13083-100 São Paulo, Brazil.
Nano Lett. 2016 Jan 13;16(1):55-61. doi: 10.1021/acs.nanolett.5b02730. Epub 2015 Dec 21.
Infrared vibrational scattering scanning near-field optical microscopy (s-SNOM) has emerged as a new frontier in imaging science due to its potential to provide nanoscale spatially resolved chemical spectroscopy for the investigation of molecular, soft-matter, and biological materials. As a phase-sensitive technique able to yield the full complex dielectric function of materials, different interferometric schemes have been developed involving asymmetric interferometry between sample and reference arms. In this work, we take advantage of a greatly simplified symmetric geometry that uses the spatially coherent background scattered light from within the confocal sample volume as a reference field for signal amplification in both self-homodyne and self-heterodyne interferometry. On the basis of a simple model for tip-sample scattering and interferometric detection, we demonstrate the measurement of the vibrational response of molecular materials in good agreement with established values. In addition to a compact design, enhanced signal levels, and a reduced sensitivity to fluctuations and drift, including those from the light source, self-referenced interferometry brings benefits for routine s-SNOM chemical spectroscopy, remaining robust even under a wide range of challenging experimental environments.
近场红外振动散射扫描光学显微镜(s-SNOM)因其具有对分子、软物质和生物材料进行纳米级空间分辨化学光谱研究的潜力,已成为成像科学的新前沿。作为一种能够提供材料全复介电函数的相敏技术,已经开发出了不同的干涉方案,涉及到样品臂和参考臂之间的非对称干涉。在这项工作中,我们利用一种大大简化的对称几何结构,该结构使用共焦样品体积内的空间相干背景散射光作为信号放大的参考场,用于自同相和自外差干涉测量。基于对针尖-样品散射和干涉检测的简单模型,我们演示了对分子材料振动响应的测量,结果与已确立的值吻合良好。除了紧凑的设计、增强的信号水平以及对波动和漂移(包括光源漂移)的敏感性降低之外,自参考干涉还为常规 s-SNOM 化学光谱学带来了好处,即使在广泛的具有挑战性的实验环境下,它仍然具有很强的稳健性。