Brenker Jason, Henzler Katja, Borca Camelia N, Huthwelker Thomas, Alan Tuncay
Department of Mechanical and Aerospace Engineering, Monash University, Clayton, Australia.
Paul Scherrer Institute, Swiss Light Source, Villigen, Switzerland.
Lab Chip. 2022 Mar 15;22(6):1214-1230. doi: 10.1039/d1lc00996f.
This paper presents an X-ray compatible microfluidic platform for characterization of chemical reactions at synchrotron light sources. We demonstrate easy to implement techniques to probe reacting solutions as they first come into contact, and study the very first milliseconds of their reaction in real-time through X-ray absorption spectroscopy (XAS). The devices use polydimethylsiloxane (PDMS) microfluidic channels sandwiched between ultrathin, X-ray transparent silicon nitride observation windows and rigid substrates. The new approach has three key advantages: i) owing to the assembly techniques employed, the devices are suitable for both high energy and tender (1-5 keV) X-rays; ii) they can operate in a vacuum environment (a must for low energy X-rays) and iii) they are robust enough to survive a full 8 hour shift of continuous scanning with a micro-focused beam, providing higher spatial and thus greater time resolution than previous studies. The combination of these opens new opportunities for studies. This has so far not been possible with Kapton or glass-based flow cells due to increased attenuation of the low energy beam passing through these materials. The devices provide a well-defined mixing region to collect spatial maps of spatially stable concentration profiles, and XAS point spectra to elucidate the chemical structure and characterize the chemical reactions. The versatility of the approach is demonstrated through XAS measurements on the mixing of two reactants in a microfluidic laminar flow device, as well as a segmented droplet based system for time resolved analysis.
本文介绍了一种用于在同步辐射光源处表征化学反应的X射线兼容微流控平台。我们展示了易于实施的技术,用于在反应溶液首次接触时对其进行探测,并通过X射线吸收光谱(XAS)实时研究其反应的最初几毫秒。这些装置使用夹在超薄、X射线透明的氮化硅观察窗和刚性基板之间的聚二甲基硅氧烷(PDMS)微流控通道。这种新方法具有三个关键优势:i)由于所采用的组装技术,这些装置适用于高能和软X射线(1-5 keV);ii)它们可以在真空环境中运行(这对于低能X射线是必需的),iii)它们足够坚固,能够在微聚焦束连续扫描的整整8小时班次中存活下来,提供比以前的研究更高的空间分辨率,从而具有更高的时间分辨率。这些优势的结合为研究开辟了新机会。由于低能光束穿过这些材料时衰减增加,使用基于Kapton或玻璃的流通池目前无法做到这一点。这些装置提供了一个定义明确的混合区域,以收集空间稳定浓度分布的空间图,以及XAS点光谱以阐明化学结构并表征化学反应。通过在微流控层流装置中对两种反应物混合的XAS测量以及用于时间分辨分析的基于分段液滴的系统,证明了该方法的多功能性。