Brazilian Synchrotron Light Laboratory (LNLS), Brazilian Center for Research in Energy and Materials (CNPEM), Campinas, 13083-970, Brazil.
Institute of Chemistry, Federal University of Goiás, Campus Samambaia, Goiânia, 74690-900, Brazil.
Sci Rep. 2021 Dec 8;11(1):23671. doi: 10.1038/s41598-021-02928-2.
Shedding synchrotron light on microfluidic systems, exploring several contrasts in situ/operando at the nanoscale, like X-ray fluorescence, diffraction, luminescence, and absorption, has the potential to reveal new properties and functionalities of materials across diverse areas, such as green energy, photonics, and nanomedicine. In this work, we present the micro-fabrication and characterization of a multifunctional polyester/glass sealed microfluidic device well-suited to combine with analytical X-ray techniques. The device consists of smooth microchannels patterned on glass, where three gold electrodes are deposited into the channels to serve in situ electrochemistry analysis or standard electrical measurements. It has been efficiently sealed through an ultraviolet-sensitive sticker-like layer based on a polyester film, and The burst pressure determined by pumping water through the microchannel(up to 0.22 MPa). Overall, the device has demonstrated exquisite chemical resistance to organic solvents, and its efficiency in the presence of biological samples (proteins) is remarkable. The device potentialities, and its high transparency to X-rays, have been demonstrated by taking advantage of the X-ray nanoprobe Carnaúba/Sirius/LNLS, by obtaining 2D X-ray nanofluorescence maps on the microchannel filled with water and after an electrochemical nucleation reaction. To wrap up, the microfluidic device characterized here has the potential to be employed in standard laboratory experiments as well as in in situ and in vivo analytical experiments using a wide electromagnetic window, from infrared to X-rays, which could serve experiments in many branches of science.
利用同步加速器光研究微流控系统,在纳米尺度原位/实时探索多种对比,如 X 射线荧光、衍射、发光和吸收,有可能揭示不同领域(如绿色能源、光子学和纳米医学)材料的新性质和功能。在这项工作中,我们展示了一种多功能聚酯/玻璃密封微流控器件的微制造和表征,该器件非常适合与分析 X 射线技术结合使用。该器件由玻璃上的光滑微通道组成,其中三个金电极沉积在通道中,用于原位电化学分析或标准电测量。它通过基于聚酯膜的紫外敏感贴纸状层进行了有效的密封,通过微通道泵送水确定的爆破压力(高达 0.22 MPa)。总的来说,该器件对有机溶剂具有出色的耐化学性,并且在存在生物样品(蛋白质)时的效率也非常显著。该器件的潜力及其对 X 射线的高透明度,通过利用 X 射线纳米探针 Carnaúba/Sirius/LNLS 得到了证明,通过在充满水的微通道上以及在电化学成核反应后获得了 2D X 射线纳米荧光图谱。总之,这里表征的微流控器件有可能在标准实验室实验以及使用从红外到 X 射线的宽电磁窗口的原位和体内分析实验中使用,这可以为许多科学分支的实验提供服务。