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Thermoplastic nanofluidic devices for biomedical applications

机译:用于生物医学的热塑性纳米流体装置

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摘要

Microfluidics is now moving into a developmental stage where basic discoveries are being transitioned into the commercial sector so that these discoveries can affect, for example, healthcare. Thus, high production rate microfabrication technologies, such as thermal embossing and/or injection molding, are being used to produce low-cost consumables appropriate for commercial applications. Based on recent reports, it is clear that nanofluidics offers some attractive process capabilities that may provide unique venues for biomolecular analyses that cannot be realized at the microscale. Thus, it would be attractive to consider early in the developmental cycle of nanofluidics production pipelines that can generate devices possessing sub150 nm dimensions in a high production mode and at low-cost to accommodate the commercialization of this exciting technology. Recently, functional sub-150 nm thermoplastic nanofluidic devices have been reported that can provide high process yield rates, which can enable commercial translation of nanofluidics. This review presents an overview of recent advancements in the fabrication, assembly, surface modification and the characterization of thermoplastic nanofluidic devices. Also, several examples in which nanoscale phenomena have been exploited for the analysis of biomolecules are highlighted. Lastly, some general conclusions and future outlooks are presented.
机译:微流体技术目前正进入发展阶段,在此阶段,基本发现正在过渡到商业领域,因此这些发现会影响例如医疗保健。因此,诸如热压印和/或注射成型的高生产率微制造技术被用于生产适合于商业应用的低成本消耗品。根据最近的报道,很明显,纳米流体技术提供了一些有吸引力的过程功能,这些功能可能为无法在微尺度上实现的生物分子分析提供独特的场所。因此,有吸引力的是考虑在纳米流体生产管线的开发周期的早期,该管线可以以高生产模式和低成本产生具有小于150 nm尺寸的器件,以适应该令人兴奋的技术的商业化。近来,已经报道了功能性低于150 nm的热塑性纳米流体装置,可以提供高的工艺产率,这可以实现纳米流体的商业转化。这篇综述概述了热塑性纳米流体装置的制造,组装,表面改性和表征方面的最新进展。另外,突出了几个实例,其中已经利用纳米级现象来分析生物分子。最后,提出了一些一般性结论和未来展望。

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