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首页> 外文期刊>Journal of Materials Science >Aqueous electrodeposition of (AuNPs/MWCNT-PEDOT) composite for high-affinity acetylcholinesterase electrochemical sensors
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Aqueous electrodeposition of (AuNPs/MWCNT-PEDOT) composite for high-affinity acetylcholinesterase electrochemical sensors

机译:用于高亲和力乙酰胆碱酯酶电化学传感器的(AUNPS / MWCNT-PEDOT)复合材料的水性电沉积

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In this work, an electrochemical transducing platform constructed from carbonaceous tubes modified with thiophene polymer and gold nanoparticles was described. The negatively charged carbon tubes attracted monomers on their surface, then migrated toward the electrode upon electrical driving force, and finally deposited on the electrode surface. Consequently, these carbon tubes were coiled and wrapped with prolonged conjugated polymer chains. Gold nanoparticles were found to be mainly nucleated and grown at highly conductive sites on carbon tubes. The combination of 2-D polymer segments, 1-D carbon tubes, and 0-D metal particles has resulted in a highly porous 3-D architecture which is crucial to increasing the electrochemical responses. Meanwhile, the charge propagation was promoted due to synergistic effect between these biocompatible and conductive materials and evidenced by a significant increase in charge transfer rate (3.5 times) and dramatic reduction in charge transfer resistance (disappearance of semicircle in Nyquist plot). The acetylcholinesterase sensor based on as-prepared hybrid film shows good attraction to acetylthiocholine (K-m(app) = 0.182 mM). Thus, the developed sensor will provide a promising tool to analyze neurotransmitters and enzyme inhibitors.
机译:在这项工作中,描述了由用噻吩聚合物和金纳米颗粒改性的碳质管构成的电化学转换平台。带负电的碳管在其表面上吸引单体,然后在电驱动力时朝向电极迁移,并且最终沉积在电极表面上。因此,这些碳管卷绕并用长期的共轭聚合物链包裹。发现金纳米颗粒主要成核并在碳管上的高导电部位生长。 2-D聚合物段,1-D碳管和0-D金属颗粒的组合导致高度多孔的3-D结构,这对于增加电化学反应至关重要。同时,由于这些生物相容性和导电材料之间的协同效应,并且通过电荷转移速率(3.5倍)的显着增加和电荷转移阻力的显着增加而显着,促进了电荷繁殖,并且电荷转移阻力(Nyquist Plot中的半圆的消失)所证明的。基于原制备的杂交膜的乙酰胆碱酯酶传感器显示出乙酰硫代胆碱的良好吸引力(K-M(APP)= 0.182mm)。因此,发达的传感器将提供有前途的工具来分析神经递质和酶抑制剂。

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