Department of Physics, Department of Chemistry, and JILA, University of Colorado, Boulder, Colorado 80309, USA.
Department of Chemistry, University of North Carolina, Chapel Hill, North Carolina 27599, USA.
Nat Nanotechnol. 2016 May;11(5):459-64. doi: 10.1038/nnano.2015.336. Epub 2016 Feb 8.
Femtosecond nonlinear optical imaging with nanoscale spatial resolution would provide access to coupled degrees of freedom and ultrafast response functions on the characteristic length scales of electronic and vibrational excitations. Although near-field microscopy provides the desired spatial resolution, the design of a broadband high-contrast nanoprobe for ultrafast temporal resolution is challenging due to the inherently weak nonlinear optical signals generated in subwavelength volumes. Here, we demonstrate broadband four-wave mixing with enhanced nonlinear frequency conversion efficiency at the apex of a nanometre conical tip. Far-field light is coupled through a grating at the shaft of the tip, generating plasmons that propagate to the apex while undergoing asymptotic compression and amplification, resulting in a nonlinear conversion efficiency of up to 1 × 10(-5). We apply this nonlinear nanoprobe to image the few-femtosecond coherent dynamics of plasmonic hotspots on a nanostructured gold surface with spatial resolution of a few tens of nanometres. The approach can be generalized towards spatiotemporal imaging and control of coherent dynamics on the nanoscale, including the extension to multidimensional spectroscopy and imaging.
飞秒非线性光学成像具有纳米级空间分辨率,可以获取电子和振动激发的特征长度尺度上的耦合自由度和超快响应函数。尽管近场显微镜提供了所需的空间分辨率,但由于亚波长体积中产生的固有弱非线性光学信号,设计用于超快时间分辨率的宽带高对比度纳米探针具有挑战性。在这里,我们在纳米锥形尖端的顶点处展示了宽带四波混频,并具有增强的非线性频率转换效率。远场光通过尖端轴上的光栅耦合,产生传播到顶点的等离子体,同时经历渐近压缩和放大,导致高达 1×10(-5)的非线性转换效率。我们将这种非线性纳米探针应用于在纳米结构金表面上的等离子体热点的几个飞秒相干动力学的成像,空间分辨率为几十纳米。该方法可以推广到纳米尺度上相干动力学的时空成像和控制,包括扩展到多维光谱和成像。