Kundu Avra, Ausaf Tariq, Rajaraman Swaminathan
NanoScience Technology Center (NSTC), University of Central Florida, Orlando, FL 32826, USA.
Department of Electrical & Computer Engineering, University of Central Florida, Orlando, FL 32826, USA.
Micromachines (Basel). 2018 Feb 15;9(2):85. doi: 10.3390/mi9020085.
We present a novel benchtop-based microfabrication technology: 3D printing, ink casting, micromachined lamination (3D PICLμM) for rapid prototyping of lab-on-a-chip (LOC) and biological devices. The technology uses cost-effective, makerspace-type microfabrication processes, all of which are ideally suited for low resource settings, and utilizing a combination of these processes, we have demonstrated the following devices: (i) 2D microelectrode array (MEA) targeted at in vitro neural and cardiac electrophysiology, (ii) microneedle array targeted at drug delivery through a transdermal route and (iii) multi-layer microfluidic chip targeted at multiplexed assays for in vitro applications. The 3D printing process has been optimized for printing angle, temperature of the curing process and solvent polishing to address various biofunctional considerations of the three demonstrated devices. We have depicted that the 3D PICLμM process has the capability to fabricate 30 μm sized MEAs (average 1 kHz impedance of 140 kΩ with a double layer capacitance of 3 μF), robust and reliable microneedles having 30 μm radius of curvature and ~40 N mechanical fracture strength and microfluidic devices having 150 μm wide channels and 400 μm fluidic vias capable of fluid mixing and transmitted light microparticle visualization. We believe our 3D PICLμM is ideally suited for applications in areas such as electrophysiology, drug delivery, disease in a dish, organ on a chip, environmental monitoring, agricultural therapeutic delivery and genomic testing.
用于片上实验室(LOC)和生物设备快速原型制作的3D打印、油墨铸造、微机械层压(3D PICLμM)技术。该技术采用具有成本效益的、类似创客空间的微制造工艺,所有这些工艺都非常适合资源匮乏的环境。通过结合这些工艺,我们展示了以下几种设备:(i)针对体外神经和心脏电生理学的二维微电极阵列(MEA),(ii)针对经皮给药的微针阵列,以及(iii)针对体外多重分析的多层微流控芯片。对3D打印工艺的打印角度、固化过程温度和溶剂抛光进行了优化,以满足所展示的三种设备的各种生物功能需求。我们已经证明,3D PICLμM工艺能够制造尺寸为30μm的MEA(双层电容为3μF时,平均1kHz阻抗为140kΩ)、曲率半径为30μm且机械断裂强度约为40N的坚固可靠的微针,以及具有150μm宽通道和400μm流体通孔、能够进行流体混合和透射光微粒可视化的微流控设备。我们相信,我们的3D PICLμM非常适合用于电生理学、药物递送、盘中疾病、芯片上器官、环境监测、农业治疗递送和基因组检测等领域的应用。