Wang Jing, Curtin Kathrine, Valentine Stephen J, Li Peng
C. Eugene Bennett Department of Chemistry, West Virginia University, Morgantown, WV, USA.
Department of Mechanical and Aerospace Engineering, West Virginia University, Morgantown, WV, USA.
Anal Chim Acta. 2023 Oct 23;1279:341792. doi: 10.1016/j.aca.2023.341792. Epub 2023 Sep 7.
Combining microfluidics with mass spectrometry (MS) analysis has great potential for enabling new analytical applications and simplifying existing MS workflows. The rapid development of 3D printing technology has enabled direct fabrication of microfluidic channels using consumer grade 3D printers, which holds great promise to facilitate the adoption of microfluidic devices by the MS community. However, photo polymerization-based 3D printed devices have an issue with chemical leeching, which can introduce contaminant molecules that may present as isobaric ions and/or severely suppress the ionization of target analytes when combined with MS analysis. Although extra cure and washing steps have alleviated the leeching issue, many such contaminant peaks can still show up in mass spectra. In this work, we report a simple surface modification strategy to isolate the chemical leachates from the channel solution thereby eliminating the contaminant peaks for MS analysis. The channel was prepared by fabricating a layer of polydimethylsiloxane graft followed by wetting the graft using silicone oil. The resulting liquid infused surface (LIS) showed significant reduction in contaminant peaks and improvement in the signal intensity of target analytes. The coating showed good stability after long-term usage (7 days) and long-term storage (∼6 months). Finally, the utility of the coating strategy was demonstrated by printing herringbone microfluidic mixers for studying fast reaction kinetics, which obtained comparable reaction rates to literature values. The effectiveness, simplicity, and stability of the present method will promote the adoption of 3D printed microdevices by the MS community.
将微流控技术与质谱(MS)分析相结合,在实现新的分析应用和简化现有质谱工作流程方面具有巨大潜力。3D打印技术的快速发展使得使用消费级3D打印机直接制造微流控通道成为可能,这对于促进质谱领域对微流控设备的应用具有很大的前景。然而,基于光聚合的3D打印设备存在化学浸出问题,这可能会引入污染物分子,这些分子在与质谱分析结合时可能表现为等压离子和/或严重抑制目标分析物的电离。尽管额外的固化和清洗步骤减轻了浸出问题,但许多此类污染物峰仍可能出现在质谱图中。在这项工作中,我们报告了一种简单的表面改性策略,用于从通道溶液中分离化学浸出物,从而消除质谱分析中的污染物峰。通过制备一层聚二甲基硅氧烷基接枝层,然后用硅油润湿接枝层来制备通道。由此产生的液体注入表面(LIS)显示污染物峰显著减少,目标分析物的信号强度得到改善。该涂层在长期使用(7天)和长期储存(约6个月)后表现出良好的稳定性。最后,通过打印用于研究快速反应动力学的人字形微流控混合器,证明了涂层策略的实用性,该混合器获得了与文献值相当的反应速率。本方法的有效性、简单性和稳定性将促进质谱领域对3D打印微器件的应用。