Chen Wanwan, Li Jing, Wang Peng, Ma Shuai, Li Bin
Department of Precision Instrument, Tsinghua University, Beijing 100084, China.
College of Mechanical Engineering, Yangzhou University, Yangzhou 225012, China.
Materials (Basel). 2024 May 17;17(10):2426. doi: 10.3390/ma17102426.
This research is dedicated to optimizing the design of microfluidic cells to minimize mass transfer effects and ensure a uniform flow field distribution, which is essential for accurate SPR array detection. Employing finite element simulations, this study methodically explored the internal flow dynamics within various microfluidic cell designs to assess the impact of different contact angles on flow uniformity. The cells, constructed from Polydimethylsiloxane (PDMS), were subjected to micro-particle image velocimetry to measure flow velocities in targeted sections. The results demonstrate that a contact angle of 135° achieves the most uniform flow distribution, significantly enhancing the capability for high-throughput array detection. While the experimental results generally corroborated the simulations, minor deviations were observed, likely due to fabrication inaccuracies. The microfluidic cells, evaluated using a custom-built SPR system, showed consistent repeatability.
本研究致力于优化微流控细胞的设计,以最小化传质效应并确保均匀的流场分布,这对于准确的表面等离子体共振(SPR)阵列检测至关重要。本研究采用有限元模拟方法,系统地探索了各种微流控细胞设计中的内部流动动力学,以评估不同接触角对流动均匀性的影响。由聚二甲基硅氧烷(PDMS)构建的细胞接受了微粒子图像测速技术,以测量目标区域的流速。结果表明,135°的接触角实现了最均匀的流动分布,显著提高了高通量阵列检测的能力。虽然实验结果总体上证实了模拟结果,但观察到了一些微小偏差,这可能是由于制造误差所致。使用定制的SPR系统评估的微流控细胞显示出一致的可重复性。