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利用改性单壁碳纳米管进行化学和生化传感

Chemical and biochemical sensing with modified single walled carbon nanotubes.

作者信息

Davis Jason J, Coleman Karl S, Azamian Bobak R, Bagshaw Claire B, Green Malcolm L H

机构信息

Inorganic Chemistry Laboratory, University of Oxford South Parks Road, Oxford OX1 3QR, UK.

出版信息

Chemistry. 2003 Aug 18;9(16):3732-9. doi: 10.1002/chem.200304872.

Abstract

The nano dimensions, graphitic surface chemistry and electronic properties of single walled carbon nanotubes make such a material an ideal candidate for chemical or biochemical sensing. Carbon nanotubes can be nondestructively oxidized along their sidewalls or ends and subsequently covalently functionalized with colloidal particles or polyamine dendrimers via carboxylate chemistry. Proteins adsorb individually, strongly and noncovalently along nanotube lengths. These nanotube-protein conjugates are readily characterized at the molecular level by atomic force microscopy. Several metalloproteins and enzymes have been bound on both the sidewalls and termini of single walled carbon nanotubes. Though coupling can be controlled, to a degree, through variation of tube oxidative pre-activation chemistry, careful control experiments and observations made by atomic force microscopy suggest that immobilization is strong, physical and does not require covalent bonding. Importantly, in terms of possible device applications, protein attachment appears to occur with retention of native biological structure. Nanotube electrodes exhibit useful voltammetric properties with direct electrical communication possible between a redox-active biomolecule and the delocalized pi system of its carbon nanotube support.

摘要

单壁碳纳米管的纳米尺寸、石墨表面化学性质和电子特性使其成为化学或生化传感的理想候选材料。碳纳米管可以沿其侧壁或端部进行无损氧化,随后通过羧酸盐化学方法与胶体颗粒或多胺树枝状大分子进行共价功能化。蛋白质会沿着纳米管长度单独、强烈且非共价地吸附。这些纳米管 - 蛋白质共轭物很容易通过原子力显微镜在分子水平上进行表征。几种金属蛋白和酶已经结合在单壁碳纳米管的侧壁和末端上。尽管耦合在一定程度上可以通过改变管的氧化预激活化学来控制,但仔细的对照实验和原子力显微镜观察表明,固定是牢固的、物理性的,并且不需要共价键。重要的是,就可能的器件应用而言,蛋白质附着似乎在保留天然生物结构的情况下发生。纳米管电极表现出有用的伏安特性,氧化还原活性生物分子与其碳纳米管载体的离域π系统之间可能存在直接的电通信。

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