Department of Chemistry, Lehigh University, 6 East Packer Ave., Bethlehem, PA 18015, USA.
School of Physical Science and Technology, ShanghaiTech University, 100 Haike Road, Shanghai 201210, China.
Soft Matter. 2020 Sep 23;16(36):8372-8379. doi: 10.1039/d0sm01104e.
The optical responses of molecules and materials provide a basis for chemical measurement and imaging. The optical diffraction limit in conventional light microscopy is exceeded by mechanically probing optical absorption through the photothermal effect with atomic force microscopy (AFM). However, the spatial resolution of AFM-based photothermal optical microscopy is still limited, and the sample surface is prone to damage from scratching due to tip contact, particularly for measurements on soft matter. In this article, we develop peak force visible (PF-vis) microscopy for the measurement of visible optical absorption of soft matter. The spatial resolution of PF-vis microscopy is demonstrated to be 3 nm on green fluorescent protein-labeled virus-like particles, and the imaging sensitivity may approach a single protein molecule. On organic photovoltaic polymers, the spatial distribution of the optical absorption probed by PF-vis microscopy is found to be dependent on the diffusion ranges of excitons in the donor domain. Through finite element modeling and data analysis, the exciton diffusion range of organic photovoltaics can be directly extracted from PF-vis images, saving the need for complex and delicate sample preparations. PF-vis microscopy will enable high-resolution nano-imaging based on light absorption of fluorophores and chromophores, as well as deciphering the correlation between the spatial distribution of photothermal signals and underlying photophysical parameters at the tens of nanometer scale.
分子和材料的光学响应为化学测量和成像提供了基础。通过原子力显微镜(AFM)利用光热效应机械探测光吸收,可以突破传统光显微镜的光学衍射极限。然而,基于 AFM 的光热光学显微镜的空间分辨率仍然有限,并且由于尖端接触,样品表面容易受到划伤的损坏,特别是对于软物质的测量。在本文中,我们开发了用于测量软物质可见光吸收的峰值力可见(PF-vis)显微镜。PF-vis 显微镜的空间分辨率在标记有绿色荧光蛋白的病毒样颗粒上证明为 3nm,并且成像灵敏度可能接近单个蛋白质分子。在有机光伏聚合物上,通过 PF-vis 显微镜探测的光吸收的空间分布被发现取决于给体域中激子的扩散范围。通过有限元建模和数据分析,可以直接从 PF-vis 图像中提取有机光伏的激子扩散范围,从而省去了复杂和精细的样品制备。PF-vis 显微镜将能够基于荧光团和生色团的光吸收进行高分辨率纳米成像,并在数十纳米的尺度上解析光热信号的空间分布与潜在光物理参数之间的相关性。