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基于多壁碳纳米管的神经微电极阵列的亲水性修饰。

Hydrophilic modification of neural microelectrode arrays based on multi-walled carbon nanotubes.

机构信息

Institute of NanoEngineering and MicroSystems, National Tsing Hua University, Hsinchu 30013, Taiwan.

出版信息

Nanotechnology. 2010 Dec 3;21(48):485501. doi: 10.1088/0957-4484/21/48/485501. Epub 2010 Nov 4.

DOI:10.1088/0957-4484/21/48/485501
PMID:21051797
Abstract

To decrease the impedance of microelectrode arrays, for neuroscience applications we have fabricated and tested MEA based on multi-walled carbon nanotubes. With decreasing physical size of a microelectrode, its impedance increases and charge-transfer capability decreases. To decrease the impedance, the effective surface area of the electrode must generally be increased. We explored the effect of plasma treatment on the surface wettability of MWCNT. With a steam-plasma treatment the surface of MWCNT becomes converted from superhydrophobic to superhydrophilic; this hydrophilic property is attributed to -OH bonding on the surface of MWCNT. We reported the synthesis at 400 °C of MWCNT on nickel-titanium multilayered metal catalysts by thermal chemical vapor deposition. Applying plasma with a power less than 25 W for 10 s improved the electrochemical and biological properties, and circumvented the limitation of the surface reverting to a hydrophobic condition; a hydrophilic state is maintained for at least one month. The MEA was used to record neural signals of a lateral giant cell from an American crayfish. The response amplitude of the action potential was about 275 µV with 1 ms period; the recorded data had a ratio of signal to noise up to 40.12 dB. The improved performance of the electrode makes feasible the separation of neural signals and the recognition of their distinct shapes. With further development the rapid treatment will be useful for long-term recording applications.

摘要

为了降低微电极阵列的阻抗,我们针对神经科学应用,制造并测试了基于多壁碳纳米管的微电极阵列。随着微电极物理尺寸的减小,其阻抗增加,电荷转移能力降低。为了降低阻抗,通常必须增加电极的有效表面积。我们研究了等离子体处理对 MWCNT 表面润湿性的影响。MWCNT 的表面经过蒸汽等离子体处理后,由超疏水变为超亲水;这种亲水性归因于 MWCNT 表面的-OH 键合。我们报道了在 400°C 下通过热化学气相沉积在镍钛多层金属催化剂上合成 MWCNT。施加功率小于 25W 的等离子体 10s 可改善电化学和生物学性能,并避免表面恢复疏水性的限制;亲水环境至少可维持一个月。微电极阵列用于记录美洲小龙虾横向巨细胞的神经信号。动作电位的响应幅度约为 275µV,周期为 1ms;记录的数据具有高达 40.12dB 的信噪比。电极性能的提高使得分离神经信号和识别其不同形状成为可能。随着进一步的发展,这种快速处理将有助于长期记录应用。

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