Three-Dimensional Printing Based Hybrid Manufacturing of Microfluidic Devices.

Yunus Alapan, Muhammad Noman Hasan, Richang Shen, Umut A Gurkan
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Abstract

Microfluidic platforms offer revolutionary and practical solutions to challenging problems in biology and medicine. Even though traditional micro/nanofabrication technologies expedited the emergence of the microfluidics field, recent advances in advanced additive manufacturing hold significant potential for single-step, stand-alone microfluidic device fabrication. One such technology, which holds a significant promise for next generation microsystem fabrication is three-dimensional (3D) printing. Presently, building 3D printed stand-alone microfluidic devices with fully embedded microchannels for applications in biology and medicine has the following challenges: (i) limitations in achievable design complexity, (ii) need for a wider variety of transparent materials, (iii) limited z-resolution, (iv) absence of extremely smooth surface finish, and (v) limitations in precision fabrication of hollow and void sections with extremely high surface area to volume ratio. We developed a new way to fabricate stand-alone microfluidic devices with integrated manifolds and embedded microchannels by utilizing a 3D printing and laser micromachined lamination based hybrid manufacturing approach. In this new fabrication method, we exploit the minimized fabrication steps enabled by 3D printing, and reduced assembly complexities facilitated by laser micromachined lamination method. The new hybrid fabrication method enables key features for advanced microfluidic system architecture: (i) increased design complexity in 3D, (ii) improved control over microflow behavior in all three directions and in multiple layers, (iii) transverse multilayer flow and precisely integrated flow distribution, and (iv) enhanced transparency for high resolution imaging and analysis. Hybrid manufacturing approaches hold great potential in advancing microfluidic device fabrication in terms of standardization, fast production, and user-independent manufacturing.

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基于三维打印的微流控器件混合制造。
微流控平台为生物学和医学中具有挑战性的问题提供了革命性和实用的解决方案。尽管传统的微/纳米制造技术加速了微流控领域的出现,但先进增材制造的最新进展为单步、独立的微流控器件制造提供了巨大的潜力。其中一项对下一代微系统制造具有重要前景的技术是三维(3D)打印。目前,为生物和医学应用构建具有完全嵌入式微通道的3D打印独立微流控装置面临以下挑战:(i)可实现的设计复杂性的限制,(ii)需要更广泛的透明材料,(iii)有限的z分辨率,(iv)缺乏极其光滑的表面光洁度,以及(v)具有极高表面积体积比的空心和空隙部分的精密制造限制。我们开发了一种利用3D打印和激光微机械层压混合制造方法来制造具有集成歧管和嵌入式微通道的独立微流体装置的新方法。在这种新的制造方法中,我们利用了3D打印实现的最小化制造步骤,并利用激光微加工层压方法降低了组装的复杂性。新的混合制造方法实现了先进微流体系统架构的关键特征:(i)增加了3D设计的复杂性,(ii)改善了对所有三个方向和多层微流行为的控制,(iii)横向多层流动和精确集成的流动分布,以及(iv)提高了高分辨率成像和分析的透明度。混合制造方法在推进微流控器件制造的标准化、快速生产和用户自主制造方面具有巨大的潜力。
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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