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将 SU8 用作金生物电极的稳定且生物相容的附着层。

Use of SU8 as a stable and biocompatible adhesion layer for gold bioelectrodes.

机构信息

Imperial College London, Exhibition Road, South Kensington, London, SW7 2AY, UK.

Center for Synaptic Neuroscience and Technology, Istituto Italiano di Tecnologia, 16132, Genoa, Italy.

出版信息

Sci Rep. 2018 Apr 3;8(1):5560. doi: 10.1038/s41598-018-21755-6.

Abstract

Gold is the most widely used electrode material for bioelectronic applications due to its high electrical conductivity, good chemical stability and proven biocompatibility. However, it adheres only weakly to widely used substrate materials such as glass and silicon oxide, typically requiring the use of a thin layer of chromium between the substrate and the metal to achieve adequate adhesion. Unfortunately, this approach can reduce biocompatibility relative to pure gold films due to the risk of the underlying layer of chromium becoming exposed. Here we report on an alternative adhesion layer for gold and other metals formed from a thin layer of the negative-tone photoresist SU-8, which we find to be significantly less cytotoxic than chromium, being broadly comparable to bare glass in terms of its biocompatibility. Various treatment protocols for SU-8 were investigated, with a view to attaining high transparency and good mechanical and biochemical stability. Thermal annealing to induce partial cross-linking of the SU-8 film prior to gold deposition, with further annealing after deposition to complete cross-linking, was found to yield the best electrode properties. The optimized glass/SU8-Au electrodes were highly transparent, resilient to delamination, stable in biological culture medium, and exhibited similar biocompatibility to glass.

摘要

金是最广泛应用于生物电子学的电极材料,因为它具有高导电性、良好的化学稳定性和已被证实的生物相容性。然而,它仅能微弱地附着在广泛使用的基底材料上,如玻璃和氧化硅,通常需要在基底和金属之间使用一层薄薄的铬以实现足够的附着力。不幸的是,由于底层铬暴露的风险,这种方法可能会降低相对于纯金膜的生物相容性。在这里,我们报告了一种替代金和其他金属的附着层,由一层薄薄的负性光刻胶 SU-8 形成,我们发现它的细胞毒性明显低于铬,在生物相容性方面与裸露的玻璃大致相当。我们研究了各种 SU-8 的处理方案,以期获得高透明度和良好的机械和生化稳定性。在沉积金之前,通过热退火来诱导 SU-8 薄膜部分交联,然后在沉积后进一步退火以完成交联,发现这可以产生最佳的电极性能。优化后的玻璃/SU8-Au 电极具有高透明度、抗分层、在生物培养基中稳定,并且表现出与玻璃相似的生物相容性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4373/5882823/097ce96c338e/41598_2018_21755_Fig1_HTML.jpg

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