Ino Kosuke, Konno An, Utagawa Yoshinobu, Kanno Taiyo, Iwase Kazuyuki, Abe Hiroya, Shiku Hitoshi
Graduate School of Engineering, Tohoku University, 6-6-11-604 Aramaki-aza Aoba, Aoba-ku, Sendai 980-8579, Japan.
Graduate School of Environmental Studies, Tohoku University, 6-6-11-604 Aramaki-aza Aoba, Aoba-ku, Sendai 980-8579, Japan.
Micromachines (Basel). 2024 Aug 22;15(8):1054. doi: 10.3390/mi15081054.
Two-layer microfluidic devices with porous membranes have been widely used in bioapplications such as microphysiological systems (MPS). Porous electrodes, instead of membranes, have recently been incorporated into devices for electrochemical cell analysis. Generally, microfluidic channels are prepared using soft lithography and assembled into two-layer microfluidic devices. In addition to soft lithography, three-dimensional (3D) printing has been widely used for the direct fabrication of microfluidic devices because of its high flexibility. However, this technique has not yet been applied to the fabrication of two-layer microfluidic devices with porous electrodes. This paper proposes a novel fabrication process for this type of device. In brief, Pluronic F-127 ink was three-dimensionally printed in the form of sacrificial layers. A porous Au electrode, fabricated by sputtering Au on track-etched polyethylene terephthalate membranes, was placed between the top and bottom sacrificial layers. After covering with polydimethylsiloxane, the sacrificial layers were removed by flushing with a cold solution. To the best of our knowledge, this is the first report on the sacrificial approach-based fabrication of two-layer microfluidic devices with a porous electrode. Furthermore, the device was used for electrochemical assays of serotonin and could successfully measure concentrations up to 5 µM. In the future, this device can be used for MPS applications.
具有多孔膜的双层微流控装置已广泛应用于生物应用,如微生理系统(MPS)。最近,多孔电极而非膜被应用于电化学细胞分析装置中。通常,微流控通道采用软光刻技术制备,并组装成双层微流控装置。除了软光刻技术外,三维(3D)打印因其高度的灵活性已被广泛用于微流控装置的直接制造。然而,该技术尚未应用于具有多孔电极的双层微流控装置的制造。本文提出了一种用于此类装置的新颖制造工艺。简而言之,将普朗尼克F - 127油墨以牺牲层的形式进行三维打印。通过在径迹蚀刻的聚对苯二甲酸乙二酯膜上溅射金制备的多孔金电极,置于顶部和底部牺牲层之间。用聚二甲基硅氧烷覆盖后,通过用冷溶液冲洗去除牺牲层。据我们所知,这是关于基于牺牲法制造具有多孔电极的双层微流控装置的首次报道。此外,该装置用于血清素的电化学检测,能够成功测量高达5 µM的浓度。未来,该装置可用于微生理系统应用。