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首页> 外文期刊>Microfluidics and nanofluidics >Strategy for fast manufacturing of 3D hydrodynamic focusing multilayer microfluidic chips and its application for flow-based synthesis of gold nanoparticles
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Strategy for fast manufacturing of 3D hydrodynamic focusing multilayer microfluidic chips and its application for flow-based synthesis of gold nanoparticles

机译:3D流体动力学聚焦多层微流体芯片快速制造策略及其对金纳米颗粒流量合成的应用

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摘要

Fabrication of 3D microfluidic devices is normally quite expensive and tedious. A strategy was established to rapidly and effectively produce multilayer 3D microfluidic chips which are made of two layers of poly(methyl methacrylate) (PMMA) sheets and three layers of double-sided pressure sensitive adhesive (PSA) tapes. The channel structures were cut in each layer by cutting plotter before assembly. The structured channels were covered by a PMMA sheet on top and a PMMA carrier which contained threads to connect with tubing. A large variety of PMMA slides and PSA tapes can easily be designed and cut with the help of a cutting plotter. The microfluidic chip was manually assembled by a simple lamination process.The complete fabrication process from device design concept to working device can be completed in minutes without the need of expensive equipment such as laser, thermal lamination, and cleanroom. This rapid frabrication method was applied for design of a 3D hydrodynamic focusing device for synthesis of gold nanoparticles (AuNPs) as proof-of-concept. The fouling of AuNPs was prevented by means of a sheath flow. Different parameters such as flow rate and concentration of reagents were controlled to achieve AuNPs of various sizes. The sheet-based fabrication method offers a possibility to create complex microfluidic devices in a rapid, cheap and easy way.
机译:3D微流体装置的制作通常非常昂贵且乏味。建立了一种迅速有效地生产多层3D微流体芯片,该策略由两层聚(甲基丙烯酸甲酯)(PMMA)片和三层双面压敏粘合剂(PSA)胶带制成。通过切割组装前通过切割绘图器在每个层中切割通道结构。结构化通道由顶部的PMMA片材和PMMA载体覆盖,该PMMA载体包含螺纹以与管连接连接。在切割绘图仪的帮助下,可以轻松设计和切割各种PMMA载玻片和PSA磁带。通过简单的层压过程手动组装微流体芯片。从装置设计概念到工作装置的完整制造过程可以在几分钟内完成,而不需要昂贵的设备,例如激光,热层压和洁净室。这种快速的扰乱方法用于设计3D流体动力聚焦装置,用于合成金纳米颗粒(AUNP)作为概念验证。通过护套流动防止了剖腹产的污垢。控制不同的参数,例如流速和试剂的浓度,以实现各种尺寸的AUNP。基于板材的制造方法提供了以快速,便宜和简便的方式创建复杂的微流体设备。

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