Centre Nanosciences et Nanotechnologies, CNRS UMR9001, Paris-Saclay University, 91460 Marcoussis, France.
Lab Chip. 2017 Jul 25;17(15):2581-2594. doi: 10.1039/c7lc00488e.
One of the most important areas of research on microfluidic technologies focuses on the identification and characterisation of novel materials with enhanced properties and versatility. Here we present a fast, easy and inexpensive microstructuration method for the fabrication of novel, flexible, transparent and biocompatible microfluidic devices. Using a simple hot press, we demonstrate the rapid (30 s) production of various microfluidic prototypes embossed in a commercially available soft thermoplastic elastomer (sTPE). This styrenic block copolymer (BCP) material is as flexible as PDMS and as thermoformable as classical thermoplastics. It exhibits high fidelity of replication using SU-8 and epoxy master molds in a highly convenient low-isobar (0.4 bar) and iso-thermal process. Microfluidic devices can then be easily sealed using either a simple hot plate or even a room-temperature assembly, allowing them to sustain liquid pressures of 2 and 0.6 bar, respectively. The excellent sorption and biocompatibility properties of the microchips were validated via a standard rhodamine dye assay as well as a sensitive yeast cell-based assay. The morphology and composition of the surface area after plasma treatment for hydrophilization purposes are stable and show constant and homogenous distribution of block nanodomains (∼22° after 4 days). These domains, which are evenly distributed on the nanoscale, therefore account for the uniform and convenient surface of a "microfluidic scale device". To our knowledge, this is the first thermoplastic elastomer material that can be used for fast and reliable fabrication and assembly of microdevices while maintaining a high and stable hydrophilicity.
微流控技术研究的一个重要领域集中在具有增强性能和多功能性的新型材料的识别和表征上。在这里,我们提出了一种快速、简单且经济的微结构方法,用于制造新型、灵活、透明和生物相容的微流控器件。使用简单的热压机,我们演示了在商业上可获得的软热塑性弹性体(sTPE)中快速(30 秒)制造各种压印微流控原型。这种苯乙烯嵌段共聚物(BCP)材料与 PDMS 一样灵活,与传统热塑性塑料一样可热成型。它使用 SU-8 和环氧树脂主模具以非常方便的低压力(0.4 巴)和等温工艺进行高保真复制。微流控器件可以使用简单的热板或甚至室温组件轻松密封,分别允许它们承受 2 和 0.6 巴的液体压力。通过标准的罗丹明染料测定法以及敏感的酵母细胞测定法验证了微芯片的出色吸附和生物相容性。为了提高亲水性而进行等离子体处理后的表面形态和组成是稳定的,并显示出嵌段纳米区的均匀且同质分布(处理后 4 天约为 22°)。这些均匀分布在纳米尺度上的纳米区构成了“微流控尺度器件”的均匀且方便的表面。据我们所知,这是第一种可用于快速可靠制造和组装微器件同时保持高且稳定亲水性的热塑性弹性体材料。