Fabrication of Centimeter Long, Ultra-Low Aspect Ratio Nanochannel Networks in Borosilicate Glass Substrates

M. Pinti, Tanuja Kambham, Bowen Wang, S. Prakash
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引用次数: 16

Abstract

Nanofluidic devices have a broad range of applications resulting from the dominance of surface-fluid interactions. Examples include molecular gating, sample preconcentration, and sample injection. Manipulation of small fluid samples is ideal for micro total analysis systems or lab on chip devices which perform multiple unit operations on a single chip. In this paper, fabrication procedures for two different ultra-low aspect ratio (ULAR) channel network designs are presented. The ULAR provides increased throughput compared to higher aspect ratio features with the same critical dimensions. Channel network designs allow for integration between microscale and nanoscale fluidic networks. A modified calcium assisted glass–glass bonding procedure was developed to fabricate chemically uniform, all glass nanochannels. A polydimethylsiloxane (PDMS)-glass adhesive bonding procedure was also developed as adhesive bonding allows for more robust fabrication with lower sensitivity to surface defects. The fabrication schemes presented allow for a broad array of available parameters for facile selection of device fabrication techniques depending on desired applications for lab on chip devices.
在硼硅玻璃衬底上制备厘米长、超低纵横比纳米通道网络
纳米流体器件由于其表面-流体相互作用的优势而具有广泛的应用。例子包括分子门控、样品预浓缩和样品进样。小流体样品的操作是理想的微总分析系统或实验室芯片上的设备,执行多个单元操作在单个芯片上。本文介绍了两种不同的超低纵横比(ULAR)信道网络设计的制作过程。与具有相同关键尺寸的高纵横比功能相比,ULAR提供了更高的吞吐量。通道网络设计允许微米级和纳米级流体网络之间的集成。开发了一种改进的钙辅助玻璃-玻璃键合工艺,以制备化学均匀的全玻璃纳米通道。聚二甲基硅氧烷(PDMS)-玻璃胶粘接工艺也被开发出来,因为胶粘接允许更坚固的制造,对表面缺陷的灵敏度更低。提出的制造方案允许广泛的可用参数阵列,以便根据芯片上实验室设备的所需应用轻松选择设备制造技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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