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用于构建生物电极的大面积超薄多壁碳纳米管纳米薄膜的浮选组装

Flotation Assembly of Large-Area Ultrathin MWCNT Nanofilms for Construction of Bioelectrodes.

作者信息

Gross Andrew J, Hammond Jules L, Holzinger Michael, Cosnier Serge

机构信息

Department of Molecular Chemistry, UMR CNRS-UGA 5250, Université Grenoble Alpes, 38000 Grenoble, France.

Université Grenoble Alpes, CERMAV, 38000 Grenoble, France.

出版信息

Nanomaterials (Basel). 2017 Oct 21;7(10):342. doi: 10.3390/nano7100342.

Abstract

We report a simple, versatile, and rapid method for the fabrication of optically-transparent large-area carbon nanotube (CNT) films via flotation assembly. After solvent-induced assembly, floating films were transferred to a flat supporting substrate to form conductive and transparent CNT film electrodes. The resulting electrodes, with uniform 40 ± 20 nm multi-walled CNT (MWCNT) layers, were characterized by electrochemical and microscopy methods. The flotation method does not require specialized thin-film instrumentation and avoids the need for surfactants and pre-oxidized CNTs which can hamper electrochemical performance. A proof-of-concept nanostructured bioelectrode demonstrating high sensitivity for glucose was developed with an electropolymerized poly(pyrene-adamantane) layer for host-guest immobilization of active β-cyclodextrin tagged GOx enzymes. The polymer provides pyrene groups for cross-linking to CNTs and pendant adamantane groups for binding the β-cyclodextrin groups of the tagged enzyme. This demonstration offers a new approach for the preparation of stable and transparent CNT film electrodes with attractive electrochemical properties towards future photobio- and bio-electrochemical fuel cells, electrochemical sensors, and electroanalysis.

摘要

我们报道了一种通过浮选组装制备光学透明大面积碳纳米管(CNT)薄膜的简单、通用且快速的方法。在溶剂诱导组装后,将漂浮的薄膜转移到平坦的支撑基板上,以形成导电且透明的CNT薄膜电极。所得电极具有均匀的40±20nm多壁碳纳米管(MWCNT)层,通过电化学和显微镜方法对其进行了表征。浮选法不需要专门的薄膜仪器,并且避免了使用可能会妨碍电化学性能的表面活性剂和预氧化的CNT。通过用于主客体固定活性β-环糊精标记的葡萄糖氧化酶(GOx)的电聚合聚(芘-金刚烷)层,开发了一种对葡萄糖具有高灵敏度的概念验证纳米结构生物电极。该聚合物提供用于与CNT交联的芘基团和用于结合标记酶的β-环糊精基团的悬垂金刚烷基团。这一展示为制备具有吸引人的电化学性质的稳定且透明的CNT薄膜电极提供了一种新方法,有望应用于未来的光生物和生物电化学燃料电池、电化学传感器及电分析领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ce0/5666507/e1fbee197cfd/nanomaterials-07-00342-g001a.jpg

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