微纳米制造柔性植入式神经电子学的洁净室策略

Finlay Walton, Maria Cerezo-Sanchez, Eve McGlynn, Rupam Das, H. Heidari
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引用次数: 7

摘要

植入式电子神经接口通常采用探针的形式,由硅和金属等刚性材料制成。它们具有与集成微芯片兼容、植入简单、高密度纳米制造等优点,但由于其机械刚性,往往在生物整合、生物相容性和耐用性方面存在不足。这会导致设备受损,更重要的是,会损害植入物周围的脑组织。柔性聚合物基探针在表面生物化学方面具有优越的生物相容性和更好的匹配机械性能。尽管在过去十年左右的时间里,人们一直在推动柔性消费电子产品的发展,但旨在将柔性聚合物基板上的电子产品制造达到纳米级的研究却非常少。基于洁净室的纳米制造技术,如光刻技术,已经被半导体工业用作模式转移方法来生产单纳米级器件,现在也被用于制造柔性电路板。利用光刻技术将柔性电子器件进一步小型化,使纳米级、非侵入性、高密度柔性神经接口成为可能。这项工作探讨了在洁净室中使用光刻和互补技术生产具有纳米尺度特征的柔性电子神经探针的制造挑战。本文是主题“先进神经技术:将创新转化为健康和福祉”的一部分。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cleanroom strategies for micro- and nano-fabricating flexible implantable neural electronics
Implantable electronic neural interfaces typically take the form of probes and are made with rigid materials such as silicon and metals. These have advantages such as compatibility with integrated microchips, simple implantation and high-density nanofabrication but tend to be lacking in terms of biointegration, biocompatibility and durability due to their mechanical rigidity. This leads to damage to the device or, more importantly, the brain tissue surrounding the implant. Flexible polymer-based probes offer superior biocompatibility in terms of surface biochemistry and better matched mechanical properties. Research which aims to bring the fabrication of electronics on flexible polymer substrates to the nano-regime is remarkably sparse, despite the push for flexible consumer electronics in the last decade or so. Cleanroom-based nanofabrication techniques such as photolithography have been used as pattern transfer methods by the semiconductor industry to produce single nanometre scale devices and are now also used for making flexible circuit boards. There is still much scope for miniaturizing flexible electronics further using photolithography, bringing the possibility of nanoscale, non-invasive, high-density flexible neural interfacing. This work explores the fabrication challenges of using photolithography and complementary techniques in a cleanroom for producing flexible electronic neural probes with nanometre-scale features. This article is part of the theme issue 'Advanced neurotechnologies: translating innovation for health and well-being'.
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