Zheng Desheng, Lu Liyang, Li Yun, Kelly Kevin F, Baldelli Steven
Department of Chemistry, University of Houston , Houston, Texas 77204-5003, United States.
Department of Electrical and Computer Engineering, Rice University , Houston, Texas 77005, United States.
J Phys Chem Lett. 2016 May 19;7(10):1781-7. doi: 10.1021/acs.jpclett.6b00507. Epub 2016 Apr 28.
A broad-band sum frequency generation microscope has been developed for the study of molecular monolayers on surfaces. Because sum frequency generation is a vibrational spectroscopy based on a second-order optical process, it is uniquely sensitive to detecting a molecule's vibrational fingerprints specifically at interfaces. In this microscope, a structured illumination beam generated by a spatial light modulator is used to irradiate the sample with a series of sparsifying pseudorandom patterns. The spectra associated with each pattern are then input into a reconstruction algorithm to compressively recover the full hyperspectral image cube. As a proof-of-principle, this system performed molecule-specific imaging of a microcontact-printed self-assembled monolayer of alkanethiolate on copper. This hyperspectral compressive imaging effectively recovered both spatial and spectral surface features with compression greater than 80%, meaning more than a 5-fold decrease in acquisition time compared to traditional methods.
已开发出一种宽带和频产生显微镜,用于研究表面的分子单层。由于和频产生是一种基于二阶光学过程的振动光谱,它在检测分子特别是在界面处的振动指纹方面具有独特的灵敏度。在该显微镜中,由空间光调制器产生的结构化照明光束用于以一系列稀疏伪随机图案照射样品。然后将与每个图案相关的光谱输入到重建算法中,以压缩恢复完整的高光谱图像立方体。作为原理验证,该系统对铜上微接触印刷的链烷硫醇自组装单层进行了分子特异性成像。这种高光谱压缩成像有效地恢复了空间和光谱表面特征,压缩率大于80%,这意味着与传统方法相比,采集时间减少了5倍以上。