†Cooperative Institute for Research in Environmental Sciences (CIRES), University of Colorado, Boulder, Colorado 80309, United States.
‡Department of Chemistry and Biochemistry, University of Colorado, UCB 216, Boulder, Colorado 80309, United States.
Anal Chem. 2015 Jun 16;87(12):6186-94. doi: 10.1021/acs.analchem.5b00809. Epub 2015 May 22.
A novel optical trapping technique is described that combines an upward propagating Gaussian beam and a downward propagating Bessel beam. Using this optical arrangement and an on-demand droplet generator makes it possible to rapidly and reliably trap particles with a wide range of particle diameters (∼1.5-25 μm), in addition to crystalline particles, without the need to adjust the optical configuration. Additionally, a new image analysis technique is described to detect particle phase transitions using a template-based autocorrelation of imaged far-field elastically scattered laser light. The image analysis allows subtle changes in particle characteristics to be quantified. The instrumental capabilities are validated with observations of deliquescence and homogeneous efflorescence of well-studied inorganic salts. Then, a novel collision-based approach to seeded crystal growth is described in which seed crystals are delivered to levitated aqueous droplets via a nitrogen gas flow. To our knowledge, this is the first account of contact-induced phase changes being studied in an optical trap. This instrument offers a novel and simple analytical technique for in situ measurements and observations of phase changes and crystal growth processes relevant to atmospheric science, industrial crystallization, pharmaceuticals, and many other fields.
一种新颖的光阱技术被描述为结合了向上传播的高斯光束和向下传播的贝塞尔光束。使用这种光学装置和按需液滴发生器,可以快速可靠地捕获具有广泛粒径范围(约 1.5-25 μm)的颗粒,包括晶体颗粒,而无需调整光学配置。此外,还描述了一种新的图像分析技术,使用基于模板的远场弹性散射激光光图像自相关来检测颗粒的相转变。图像分析允许量化颗粒特征的细微变化。该仪器的功能通过对经过充分研究的无机盐的潮解和均相升华的观察得到验证。然后,描述了一种基于碰撞的晶种晶体生长的新方法,其中通过氮气流将晶种输送到悬浮在空气中的液滴中。据我们所知,这是首次在光阱中研究接触诱导的相变。该仪器为大气科学、工业结晶、药物学等许多其他领域中与相变和晶体生长过程相关的原位测量和观察提供了一种新颖而简单的分析技术。