Fast multi-resolution 3D printing of microfluidics: enabling 2 μm channels and ultra-compact mixers.

IF 9.9 1区 工程技术 Q1 INSTRUMENTS & INSTRUMENTATION
Dallin S Miner, Matthew S Viglione, Kent Hooper, Adam T Woolley, Gregory P Nordin
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引用次数: 0

Abstract

Microfluidic devices with ultra-fine features are critical for applications in biomedical diagnostics, chemical analysis, and lab-on-chip systems, but achieving high-resolution negative features with fast print times remains a significant challenge due to limitations in conventional 3D printing techniques. Motivated by the need for rapid fabrication of precise, compact microfluidic structures to enhance performance and miniaturization, we present an efficient multi-resolution 3D printing technique designed to fabricate microfluidic devices with exceptionally high-resolution negative features. For instance, we achieve fully enclosed channels with cross sections as small as 1.9 µm × 2.0 µm, a two-order-of-magnitude reduction in cross-sectional area compared to the 18 µm × 20 µm channels reported in our previous work (Gong et al., Lab Chip 17, 2899, 2017). Our method utilizes a dual-optical-engine approach comprising a Very High Resolution Optical Engine (VHROE) and a Main Optical Engine (MOE), each employing distinct pixel resolutions and LED wavelengths. The VHROE, with a pixel pitch of 0.75 µm and a 365 nm LED, delivers unparalleled resolution, while the MOE, with a pixel pitch of 15 µm and a 405 nm LED, ensures efficient coverage for larger areas up to 38.9 mm × 24.3 mm. Custom ultraviolet (UV) short-pass filters are used to tailor each LED spectrum, optimizing performance for each optical engine. Both engines are mounted on an XY stage to achieve multi-resolution imaging in the XY plane. Depth-wise (Z-axis) multi-resolution is achieved by formulating a photopolymerizable resin incorporating two UV absorbers possessing distinct absorption spectra such that the different light spectra from the VHROE and MOE encounter disparate levels of absorption, resulting in 1/e penetration depths of 2 µm and 20 µm, respectively. This enables true multi-resolution printing in all three dimensions. Our method balances speed and resolution by selectively deploying the VHROE for ultra-fine features and the MOE for bulk structures within a single 3D print. To demonstrate the versatility of this technique, we fabricated intricate microfluidic structures, including a triply-periodic minimal surface (TPMS) with 7 µm pores embedded within a 150 µm × 150 µm cross section enclosed channel, and an ultra-compact microfluidic mixer with a printed volume of only 0.017 mm³ (17 nL) and a print time of 21 minutes. These examples underscore the potential of our multi-resolution 3D printing method for advancing microfluidic device fabrication.

微流体的快速多分辨率3D打印:支持2 μm通道和超紧凑混合器。
具有超细特征的微流控设备对于生物医学诊断、化学分析和芯片实验室系统的应用至关重要,但由于传统3D打印技术的局限性,实现高分辨率负片特征和快速打印时间仍然是一个重大挑战。由于需要快速制造精确、紧凑的微流控结构以提高性能和小型化,我们提出了一种高效的多分辨率3D打印技术,旨在制造具有超高分辨率负向特征的微流控装置。例如,我们实现了横截面小至1.9 μ m × 2.0 μ m的全封闭通道,与我们之前工作中报道的18 μ m × 20 μ m通道相比,横截面积减少了两个数量级(Gong等人,Lab Chip 17, 2899, 2017)。我们的方法采用双光引擎方法,包括一个非常高分辨率光引擎(VHROE)和一个主光引擎(MOE),每个都采用不同的像素分辨率和LED波长。VHROE的像素间距为0.75µm, LED为365 nm,可提供无与伦比的分辨率,而MOE的像素间距为15µm, LED为405 nm,可确保有效覆盖38.9 mm × 24.3 mm的更大区域。定制紫外(UV)短通滤波器用于定制每个LED光谱,优化每个光学引擎的性能。两个引擎都安装在一个XY级上以实现在XY平面上的多分辨率成像。深度(z轴)多分辨率是通过配制一种光聚合树脂来实现的,该树脂含有两种具有不同吸收光谱的紫外线吸收剂,使得来自VHROE和MOE的不同光谱会遇到不同的吸收水平,从而导致1/e穿透深度分别为2µm和20µm。这使真正的多分辨率打印在所有三个维度。我们的方法通过在单个3D打印中选择性地部署用于超精细特征的VHROE和用于大块结构的MOE来平衡速度和分辨率。为了证明该技术的多功能性,我们制造了复杂的微流控结构,包括一个三周期最小表面(TPMS),在一个150 μ m × 150 μ m横截面的封闭通道内嵌入7 μ m孔,以及一个超紧凑的微流控混合器,其打印体积仅为0.017 mm³(17 nL),打印时间为21分钟。这些例子强调了我们的多分辨率3D打印方法在推进微流体器件制造方面的潜力。
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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来源期刊
Microsystems & Nanoengineering
Microsystems & Nanoengineering Materials Science-Materials Science (miscellaneous)
CiteScore
12.00
自引率
3.80%
发文量
123
审稿时长
20 weeks
期刊介绍: Microsystems & Nanoengineering is a comprehensive online journal that focuses on the field of Micro and Nano Electro Mechanical Systems (MEMS and NEMS). It provides a platform for researchers to share their original research findings and review articles in this area. The journal covers a wide range of topics, from fundamental research to practical applications. Published by Springer Nature, in collaboration with the Aerospace Information Research Institute, Chinese Academy of Sciences, and with the support of the State Key Laboratory of Transducer Technology, it is an esteemed publication in the field. As an open access journal, it offers free access to its content, allowing readers from around the world to benefit from the latest developments in MEMS and NEMS.
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