Hertzog Manuel, Munkhbat Battulga, Baranov Denis, Shegai Timur, Börjesson Karl
Department of Chemistry and Molecular Biology, University of Gothenburg, Kemigården 4, 412 96, Gothenburg, Sweden.
Department of Physics, Chalmers University of Technology, 412 96, Gothenburg, Sweden.
Nano Lett. 2021 Feb 10;21(3):1320-1326. doi: 10.1021/acs.nanolett.0c04014. Epub 2021 Jan 27.
Vibrational strong coupling is emerging as a promising tool to modify molecular properties by making use of hybrid light-matter states known as polaritons. Fabry-Perot cavities filled with organic molecules are typically used, and the molecular concentration limits the maximum reachable coupling strength. Developing methods to increase the coupling strength beyond the molecular concentration limit are highly desirable. In this Letter, we investigate the effect of adding a gold nanorod array into a cavity containing pure organic molecules using FT-IR microscopy and numerical modeling. Incorporation of the plasmonic nanorod array that acts as artificial molecules leads to an order of magnitude increase in the total coupling strength for the cavity with matching resonant frequency filled with organic molecules. Additionally, we observe a significant narrowing of the plasmon line width inside the cavity. We anticipate that these results will be a step forward in exploring vibropolaritonic chemistry and may be used in plasmon based biosensors.
振动强耦合正成为一种很有前景的工具,可通过利用被称为极化激元的混合光物质态来改变分子性质。通常使用填充有有机分子的法布里 - 珀罗腔,而分子浓度限制了可达到的最大耦合强度。开发超越分子浓度限制来提高耦合强度的方法非常必要。在本信函中,我们使用傅里叶变换红外显微镜和数值模拟研究了向含有纯有机分子的腔中添加金纳米棒阵列的效果。掺入充当人工分子的等离子体纳米棒阵列会使填充有有机分子且具有匹配共振频率的腔的总耦合强度提高一个数量级。此外,我们观察到腔内等离子体线宽显著变窄。我们预计这些结果将在探索振动极化激元化学方面向前迈出一步,并且可用于基于等离子体的生物传感器。