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使用乙酸和紫外线处理快速制备用于芯片实验室应用的聚甲基丙烯酸甲酯器件

Rapid Fabrication of Poly(methyl methacrylate) Devices for Lab-on-a-Chip Applications Using Acetic Acid and UV Treatment.

作者信息

Trinh Kieu The Loan, Thai Duc Anh, Chae Woo Ri, Lee Nae Yoon

机构信息

Department of Industrial Environmental Engineering, Gachon University, 1342 Seongnam-daero, Sujeong-gu, Seongnam-si, Gyeonggi-do 13120, Korea.

Department of BioNano Technology, Gachon University, 1342 Seongnam-daero, Sujeong-gu, Seongnam-si, Gyeonggi-do 13120, Korea.

出版信息

ACS Omega. 2020 Jul 8;5(28):17396-17404. doi: 10.1021/acsomega.0c01770. eCollection 2020 Jul 21.

Abstract

In the present study, we introduce a new approach for rapid bonding of poly(methyl methacrylate) (PMMA)-based microdevices using an acetic acid solvent with the assistance of UV irradiation. For the anticipated mechanism, acetic acid and UV irradiation induced free radicals on the PMMA surfaces, and acrylate monomers subsequently formed cross-links to create a permanent bonding between the PMMA substrates. PMMA devices effectively bonded within 30 s at a low pressure using clamps, and a clogging-free microchannel was achieved with the optimized 50% acetic acid. For surface characterizations, contact angle measurements and bonding performance analyses were conducted using predetermined acetic acid concentrations to optimize bonding conditions. In addition, the highest bond strength of bonded PMMA was approximately 11.75 MPa, which has not been reported before in the bonding of PMMA. A leak test was performed over 180 h to assess the robustness of the proposed method. Moreover, to promote the applicability of this bonding method, we tested two kinds of microfluidic device applications, including a cell culture-based device and a metal microelectrode-integrated device. The results showed that the cell culture-based application was highly biocompatible with the PMMA microdevices fabricated using an acetic acid solvent. Moreover, the low pressure required during the bonding process supported the integration of metal microelectrodes with the PMMA microdevice without any damage to the metal films. This novel bonding method holds great potential in the ecofriendly and rapid fabrication of microfluidic devices using PMMA.

摘要

在本研究中,我们介绍了一种新方法,即在紫外线照射的辅助下,使用乙酸溶剂快速键合聚甲基丙烯酸甲酯(PMMA)基微器件。对于预期的机制,乙酸和紫外线照射在PMMA表面诱导产生自由基,随后丙烯酸酯单体形成交联,从而在PMMA基板之间形成永久键合。使用夹具在低压下,PMMA器件能在30秒内有效键合,并且通过优化的50%乙酸实现了无堵塞的微通道。为了进行表面表征,使用预定的乙酸浓度进行接触角测量和键合性能分析,以优化键合条件。此外,键合后的PMMA的最高键合强度约为11.75 MPa,这在PMMA键合方面此前尚未见报道。进行了长达180小时的泄漏测试,以评估所提出方法的稳健性。此外,为了提高这种键合方法的适用性,我们测试了两种微流控器件应用,包括基于细胞培养的器件和集成金属微电极的器件。结果表明,基于细胞培养的应用与使用乙酸溶剂制造的PMMA微器件具有高度生物相容性。此外,键合过程中所需的低压支持了金属微电极与PMMA微器件的集成,且不会对金属膜造成任何损坏。这种新颖的键合方法在使用PMMA进行环保且快速的微流控器件制造方面具有巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7dd/7377064/61a573ad0cd8/ao0c01770_0001.jpg

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