Bezrukov Artem, Galyametdinov Yury
Department of Physical and Colloid Chemistry, Kazan National Research Technological University, Kazan 420015, Russia.
Micromachines (Basel). 2022 Oct 19;13(10):1778. doi: 10.3390/mi13101778.
In this study, we report on the developing of a continuous microfluidic reaction device that allows selective activation of polyelectrolyte-surfactant chemical signals in microflows and switches them between multiple outputs. A numerical model was developed for convection-diffusion reaction processes in reactive polymer-colloid microfluidic flows. Matlab scripts and scaling laws were developed for this model to predict reaction initiation and completion conditions in microfluidic devices and the location of the reaction front. The model allows the optimization of microfluidic device geometry and the setting of operation modes that provide release of the reaction product through specific outputs. Representing a chemical signal, polyelectrolyte-surfactant reaction products create various logic gate states at microfluidic chip outputs. Such systems may have potential as biochemical signal transmitters in organ-on-chip applications or chemical logic gates in cascaded microfluidic devices.
在本研究中,我们报告了一种连续微流反应装置的开发情况,该装置能够在微流中选择性激活聚电解质 - 表面活性剂化学信号,并在多个输出之间切换这些信号。针对反应性聚合物 - 胶体微流中的对流 - 扩散反应过程,开发了一个数值模型。为此模型开发了Matlab脚本和缩放定律,以预测微流装置中的反应起始和完成条件以及反应前沿的位置。该模型允许优化微流装置的几何形状,并设置通过特定输出释放反应产物的操作模式。聚电解质 - 表面活性剂反应产物作为一种化学信号,在微流芯片输出端创建各种逻辑门状态。此类系统在芯片上器官应用中作为生化信号发射器或在级联微流装置中作为化学逻辑门可能具有潜力。