Li Haozheng, Cheng Yong, Tang Huajun, Bi Yali, Chen Yage, Yang Guang, Guo Shoujing, Tian Sidan, Liao Jiangshan, Lv Xiaohua, Zeng Shaoqun, Zhu Mingqiang, Xu Chenjie, Cheng Ji-Xin, Wang Ping
Britton Chance Center for Biomedical Photonics Wuhan National Laboratory for Optoelectronics Huazhong University of Science and Technology Wuhan Hubei 430074 China.
MoE Key Laboratory for Biomedical Photonics Collaborative Innovation Center for Biomedical Engineering School of Engineering Sciences Huazhong University of Science and Technology Wuhan Hubei 430074 China.
Adv Sci (Weinh). 2020 Mar 9;7(10):1903644. doi: 10.1002/advs.201903644. eCollection 2020 May.
Numerous mechanisms have been proposed for polymerization to provide qualitative and quantitative prediction of how monomers spatially and temporally arrange into the polymeric chains. However, less is known about this process at the molecular level because the ultrafast chemical reaction is inaccessible for any form of microscope so far. Here, to address this unmet challenge, a stimulated Raman scattering microscope based on collinear multiple beams (COMB-SRS) is demonstrated, which allows label-free molecular imaging of polymer synthesis in action at speed of 2000 frames per second. The field of view of the developed 2 kHz SRS microscope is 30 × 28 µm with 50 × 46 pixels and 7 µs dwell time. By catching up the speed of chemical reaction, COMB-SRS is able to quantitatively visualize the ultrafast dynamics of molecular vibrations with submicron spatial resolution and sub-millisecond temporal resolution. The propagating polymer waves driven by reaction rate and persistent UV initiation are observed in situ. This methodology is expected to permit the development of novel functional polymers, controllable photoresists, 3D printing, and other new polymerization technologies.
人们已经提出了许多聚合反应机制,以对单体如何在空间和时间上排列成聚合物链进行定性和定量预测。然而,在分子水平上对这一过程的了解较少,因为迄今为止,任何形式的显微镜都无法观察到这种超快化学反应。在此,为应对这一尚未解决的挑战,展示了一种基于共线多光束的受激拉曼散射显微镜(COMB-SRS),它能够以每秒2000帧的速度对正在进行的聚合物合成进行无标记分子成像。所开发的2kHz SRS显微镜的视场为30×28µm,有50×46像素,驻留时间为7µs。通过跟上化学反应的速度,COMB-SRS能够以亚微米空间分辨率和亚毫秒时间分辨率定量可视化分子振动的超快动力学。原位观察到了由反应速率和持续紫外引发驱动的传播聚合物波。预计该方法将推动新型功能聚合物、可控光刻胶、3D打印及其他新型聚合技术的发展。