Faculty of Mechanical Engineering, Micro- and Nanofluidics Laboratory, Technion-Israel Institute of Technology, Technion City 32000, Israel.
School of Engineering and Applied Sciences, Harvard University, Cambridge, Massachusetts 02138, United States.
Nano Lett. 2020 Dec 9;20(12):8524-8533. doi: 10.1021/acs.nanolett.0c02973. Epub 2020 Nov 23.
Integration of ionic permselective medium (e.g., nanochannels, membranes) within microfluidic channels has been shown to enable on-chip desalination, sample purification, bioparticle sorting, and biomolecule concentration for enhanced detection sensitivity. However, the ion-permselective mediums are generally of fixed properties and cannot be dynamically tuned. Here we study a microfluidic device consisting of an array of individually addressable elastic membranes connected in series on top of a single microfluidic channel that can be deformed to locally reduce the channel cross-section into a nanochannel. Dynamic tunability of the ion-permselective medium, as well as controllability of its location and ionic permselectivity, introduces a new functionality to microfluidics-based lab-on-a-chip devices, for example, dynamic localization of preconcentrated biomolecule plugs at different sensing regions for multiplex detection. Moreover, the ability to simultaneously form a series of preconcentrated plugs at desired locations increases parallelization of the system and the trapping efficiency of target analytes.
将离子选择性介质(例如纳米通道、膜)集成到微流道中已被证明可实现片上脱盐、样品纯化、生物颗粒分选和生物分子浓缩,从而提高检测灵敏度。然而,离子选择性介质通常具有固定的性质,无法进行动态调节。在这里,我们研究了一种微流控装置,该装置由串联连接在单个微流道顶部的可单独寻址的弹性膜阵列组成,这些膜可以变形为局部将通道横截面减小为纳米通道。离子选择性介质的动态可调性以及其位置和离子选择性的可控性为基于微流控的片上实验室设备引入了新的功能,例如,将预浓缩的生物分子塞在不同的传感区域内进行动态定位,以实现多重检测。此外,能够在期望的位置同时形成一系列预浓缩塞增加了系统的并行化和目标分析物的捕获效率。