Department of Biomedical Engineering, University of Houston, 3517 Cullen Blvd, Houston, TX, 77204, USA.
Adv Mater. 2022 Jul;34(30):e2200512. doi: 10.1002/adma.202200512. Epub 2022 Jun 16.
In recent years, 3D printing of electronics have received growing attention due to their potential applications in emerging fields such as nanoelectronics and nanophotonics. Multiphoton lithography (MPL) is considered the state-of-the-art amongst the microfabrication techniques with true 3D fabrication capability owing to its excellent level of spatial and temporal control. Here, a homogenous and transparent photosensitive resin doped with an organic semiconductor material (OS), which is compatible with MPL process, is introduced to fabricate a variety of 3D OS composite microstructures (OSCMs) and microelectronic devices. Inclusion of 0.5 wt% OS in the resin enhances the electrical conductivity of the composite polymer about 10 orders of magnitude and compared to other MPL-based methods, the resultant OSCMs offer high specific electrical conductivity. As a model protein, laminin is incorporated into these OSCMs without a significant loss of activity. The OSCMs are biocompatible and support cell adhesion and growth. Glucose-oxidase-encapsulated OSCMs offer a highly sensitive glucose sensing platform with nearly tenfold higher sensitivity compared to previous glucose biosensors. In addition, this biosensor exhibits excellent specificity and high reproducibility. Overall, these results demonstrate the great potential of these novel MPL-fabricated OSCM devices for a wide range of applications from flexible bioelectronics/biosensors, to nanoelectronics and organ-on-a-chip devices.
近年来,由于在新兴领域(如纳电子学和纳米光子学)的潜在应用,电子 3D 打印受到了越来越多的关注。多光子光刻(MPL)被认为是具有真正 3D 制造能力的微制造技术中的最新技术,因为它具有出色的时空控制水平。在这里,介绍了一种均匀透明的光致感光树脂,其中掺杂了一种与 MPL 工艺兼容的有机半导体材料(OS),以制造各种 3D OS 复合材料微结构(OSCM)和微电子器件。将 0.5wt%OS 掺入树脂中,可将复合材料的电导率提高约 10 个数量级,与其他基于 MPL 的方法相比,所得的 OSCM 具有较高的比电导率。以模型蛋白层粘连蛋白为例,将其掺入这些 OSCM 中而不会显著降低其活性。OSCM 具有生物相容性,可支持细胞黏附和生长。包封葡萄糖氧化酶的 OSCM 提供了一种高灵敏度的葡萄糖传感平台,与以前的葡萄糖生物传感器相比,灵敏度提高了近 10 倍。此外,该生物传感器还具有出色的特异性和高重现性。总之,这些结果表明,这些新型 MPL 制造的 OSCM 器件在从柔性生物电子学/生物传感器到纳电子学和芯片上器官设备等广泛应用中具有巨大的潜力。