生物加工
制作
微流控
材料科学
纳米技术
造型(装饰)
小型化
生物芯片
可扩展性
流体学
光刻
模具
平版印刷术
流量(数学)
微加工
聚二甲基硅氧烷
作者
Koki Takahashi,Kyohei Terao
出处
期刊:Lab on a Chip
[Royal Society of Chemistry]
日期:2026-01-01
卷期号:26 (9): 2889-2899
摘要
High-density two-dimensional (2D) micronozzle arrays with independently addressable microchannels are essential components for microfluidic probes, localized biochemical processing, and emerging micronozzle-based biofabrication systems. However, existing fabrication approaches typically rely on photolithography, multilayer stacking, or additive manufacturing, which can impose practical limitations in terms of fabrication complexity, scalability, and accessibility as micronozzle density increases. Here, we report a lithography-free fabrication method for high-density 2D micronozzle arrays based on a twisted thin-wire molding approach. By rotationally skewing thin sacrificial wires between two perforated plates and molding an elastomeric material, a dense wire arrangement is formed at a predefined plane. Sectioning at this plane yields closely packed micronozzle arrays with independent channel connectivity. Using 30 μm-diameter wire molds, a 4 × 4 micronozzle array was fabricated with an average aperture diameter of 35 μm and a center-to-center spacing of approximately 85 μm. Hydrodynamic flow confinement experiments demonstrated stable and parallel localized flow control, with confinement areas reduced to approximately 14% of those reported for multilayer-stacked microfluidic probes with a micronozzle array. The proposed approach provides a simple and scalable method for fabricating high-density micronozzle arrays and may facilitate broader adoption of advanced microfluidic probe architectures and nozzle-based biofabrication platforms.
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