Khandelwal Apratim, Athreya Nagendra, Tu Michael Q, Janavicius Lukas L, Yang Zhendong, Milenkovic Olgica, Leburton Jean-Pierre, Schroeder Charles M, Li Xiuling
Department of Electrical and Computer Engineering, University of Illinois Urbana-Champaign, Urbana, IL 61801 USA.
Nick Holonyak Micro and Nanotechnology Laboratory, University of Illinois Urbana-Champaign, Urbana, IL 61801 USA.
Microsyst Nanoeng. 2022 Feb 28;8:27. doi: 10.1038/s41378-022-00354-6. eCollection 2022.
On-chip manipulation of charged particles using electrophoresis or electroosmosis is widely used for many applications, including optofluidic sensing, bioanalysis and macromolecular data storage. We hereby demonstrate a technique for the capture, localization, and release of charged particles and DNA molecules in an aqueous solution using tubular structures enabled by a strain-induced self-rolled-up nanomembrane (S-RuM) platform. Cuffed-in 3D electrodes that are embedded in cylindrical S-RuM structures and biased by a constant DC voltage are used to provide a uniform electrical field inside the microtubular devices. Efficient charged-particle manipulation is achieved at a bias voltage of <2-4 V, which is ~3 orders of magnitude lower than the required potential in traditional DC electrophoretic devices. Furthermore, Poisson-Boltzmann multiphysics simulation validates the feasibility and advantage of our microtubular charge manipulation devices over planar and other 3D variations of microfluidic devices. This work lays the foundation for on-chip DNA manipulation for data storage applications.
利用电泳或电渗对带电粒子进行芯片上操作在许多应用中广泛使用,包括光流控传感、生物分析和大分子数据存储。我们在此展示了一种利用应变诱导自卷曲纳米膜(S-RuM)平台实现的管状结构,在水溶液中捕获、定位和释放带电粒子及DNA分子的技术。嵌入圆柱形S-RuM结构并由恒定直流电压偏置的袖套式三维电极用于在微管装置内部提供均匀电场。在小于2 - 4伏的偏置电压下可实现高效的带电粒子操作,这比传统直流电泳装置所需的电势低约3个数量级。此外,泊松 - 玻尔兹曼多物理场模拟验证了我们的微管电荷操纵装置相对于平面和微流控装置的其他三维变体的可行性和优势。这项工作为用于数据存储应用的芯片上DNA操纵奠定了基础。