基于直流电泳沉积和纳米二氧化钛的神经记录/刺激柔性电极的超快速廉价微加工

Zhaoling Huang, Qi Zeng, Jinjiang Huang, Shuijie Qin, Tianzhun Wu
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引用次数: 0

摘要

采用直流(DC)电泳沉积和纳米二氧化钛(nano-TiO2)制备了一种基于铂(Pt)纳米球的神经记录/刺激柔性微电极阵列(fMEA)。为了避免刚性金属层与柔软聚合物衬底之间的巨大不匹配,我们引入了聚多巴胺(PDA)缓冲层将Pt纳米球接枝到聚酰亚胺(PI)衬底上,并添加了TiO2将PDA的光合作用从~ 24h加速到~ 2h。我们进一步使用直流电泳选择性沉积PDA/TiO2/Pt来绘制fMEA的模式,并将PDA合成时间缩短到10-20分钟,比现有的最佳记录快72倍。与传统的溅射沉积Ti/Pt的fMEA相比,具有可图制化PDA/TiO2/Pt电极的fMEA阻抗明显降低(降低99.3%),阴极电荷存储容量提高(CSCc提高94倍)。这种方法也将极大地促进廉价、高性能柔性电子产品的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrafast and Inexpensive Microfabrication of Flexible Electrodes for Neural Recording/Stimulation Based on DC Electrophoresis Deposition and Nano-Titanium Dioxide
A flexible microelectrode array (fMEA) for neural recording/stimulation based on platinum (Pt) nanospheres was microfabricated by an ultrafast and inexpensive method enabled by direct current (DC) electrophoresis deposition and nano-titanium dioxide (nano-TiO2). To avoid the great mismatch between the rigid metal layer and the soft polymer substrate, we introduced a polydopamine (PDA) buffer layer to graft Pt nanospheres to polyimide (PI) substrates, and TiO2 was added to accelerate the photosynthesis of PDA from ∼24h to ∼2h. We further used DC electrophoresis to selectively deposit PDA/TiO2/Pt to pattern fMEA and minimize the PDA synthesis to only 10-20 mins, which is 72 times faster than the best record reported. Compared with conventional fMEA with Ti/Pt deposited by sputtering, the as-fabricated fMEA with patternable PDA/TiO2/Pt electrodes have significantly lower impedance (reduced by 99.3%) and better cathodic charge storage capacity (CSCc, increased by 94 times). This method will also greatly benefit the development of inexpensive, high-performance flexible electronics.
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