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热塑性微流体学

Thermoplastic Microfluidics.

作者信息

Kristiansen Per Magnus, Karpik Agnieszka, Werder Jerome, Guilherme Marco, Grob Michael

机构信息

FHNW University of Applied Sciences and Arts Northwestern Switzerland, School of Engineering, Institute of Polymer Nanotechnology (INKA), Windisch, Switzerland.

Laboratory of Micro- and Nanotechnology (LMN), Paul Scherrer Institute (PSI), Villigen-PSI, Switzerland.

出版信息

Methods Mol Biol. 2022;2373:39-55. doi: 10.1007/978-1-0716-1693-2_3.

Abstract

Thermoplastic polymers are besides glass the material of choice for the industrialization of microfluidic and organ-on-chip applications. In most cases, however, such devices are developed on the basis standard lithographic clean room technologies and subsequent casting into PDMS. This results in comparably fast progress in the development of functional designs but important aspects with respect to later industrialization are thereby largely neglected. For that reason, it is advisable to switch at a rather early stage of development from PDMS to a thermoplastic polymer such as, for instance, cyclo-olefin (co)polymer (COC, COP). By making this step, additional challenges related to the anticipated manufacturing process can be identified, which is particularly important when aiming at industrialization. We present herein a standard process sequence for mastering of microfluidic devices by two-photon polymerization and final transfer into COC films by hot embossing. In addition, we describe the laser micromanufacturing of polymeric mold inserts and subsequent prototype injection molding of small series of COP samples.

摘要

除玻璃外,热塑性聚合物是微流控和芯片器官应用工业化的首选材料。然而,在大多数情况下,此类设备是基于标准光刻洁净室技术开发的,随后浇铸到聚二甲基硅氧烷(PDMS)中。这使得功能设计的开发进展相对较快,但与后期工业化相关的重要方面在很大程度上被忽视了。因此,建议在开发的早期阶段从PDMS转向热塑性聚合物,例如环烯烃(共)聚合物(COC、COP)。通过这一步骤,可以识别与预期制造工艺相关的其他挑战,这在旨在实现工业化时尤为重要。我们在此展示了一个标准工艺流程,用于通过双光子聚合掌握微流控设备,并通过热压印最终转移到COC薄膜中。此外,我们描述了聚合物模具镶件的激光微制造以及随后小批量COP样品的原型注塑成型。

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