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微接触印刷术制备的多壁碳纳米管功能化微电极阵列:用于研究化学和电神经元信号的平台。

Multiwalled carbon-nanotube-functionalized microelectrode arrays fabricated by microcontact printing: platform for studying chemical and electrical neuronal signaling.

机构信息

Natural and Medical Sciences Institute, Markwiesenstrasse 55, Reutlingen, Germany.

出版信息

Small. 2011 Feb 18;7(4):524-30. doi: 10.1002/smll.201001640. Epub 2011 Jan 18.

Abstract

A facile method is proposed for the deposition of multiwalled carbon nanotube (MWCNT) layers onto microelectrode arrays by means of a microcontact printing technique, leading to the fabrication of MEAs characterized by well defined electrical and morphological properties. Using polydimethyl siloxane stamps, produced from different mold designs, a flexibility of printing is achieved that provides access to microscale, nanostructured electrodes. The thickness of MWCNT layers can be exactly predetermined by evaluating the concentration of the MWCNT solution employed in the process. The electrode morphology is further characterized using laser scanning and scanning electron microscopy. Next, by means of impedance spectroscopy analysis, the MWCNT-electrode contact resistance and MWCNT film resistance is measured, while electrochemical impedance spectroscopy is used to estimate the obtained electrode-electrolyte interface. Structural and electrochemical properties make these electrodes suitable for electrical stimulation and recording of neurons and electrochemical detection of dopamine. MWCNT-functionalized electrodes show the ability to detect micromolar amounts of dopamine with a sensitivity of 19 nA μm(-1) . In combination with their biosensing properties, preliminary electrophysiological measurements show that MWCNT microelectrodes have recording properties superior to those of commercial TiN microelectrodes when detecting neuronal electrical activity under long-term cell-culture conditions. MWCNT-functionalized microelectrode arrays fabricated by microcontact printing represent a versatile and multipurpose platform for cell-culture monitoring.

摘要

提出了一种通过微接触印刷技术将多壁碳纳米管 (MWCNT) 层沉积到微电极阵列上的简便方法,从而制造出具有良好定义的电和形态特性的 MEAs。使用不同模具设计制作的聚二甲基硅氧烷 (PDMS) 印章,可以实现打印的灵活性,从而实现微尺度、纳米结构电极的制备。通过评估MWCNT 溶液在该过程中的浓度,可以精确地预先确定 MWCNT 层的厚度。进一步使用激光扫描和扫描电子显微镜对电极形貌进行了表征。接下来,通过阻抗谱分析测量了 MWCNT-电极接触电阻和 MWCNT 膜电阻,同时使用电化学阻抗谱来估计获得的电极-电解质界面。结构和电化学性质使这些电极适合神经元的电刺激和记录以及多巴胺的电化学检测。MWCNT 功能化电极能够检测到微摩尔级别的多巴胺,灵敏度为 19 nA μm(-1)。结合其生物传感特性,初步的电生理测量表明,在长期细胞培养条件下检测神经元电活动时,MWCNT 微电极的记录性能优于商用 TiN 微电极。通过微接触印刷制造的 MWCNT 功能化微电极阵列代表了一种用于细胞培养监测的多功能平台。

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