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5,5-二硫代双(2-硝基苯甲酸)芘衍生物-碳纳米管电极用于 NADH 电氧化和多铜氧化酶的定向固定化,用于开发葡萄糖/O 生物燃料电池。

5,5-Dithiobis(2-nitrobenzoic acid) pyrene derivative-carbon nanotube electrodes for NADH electrooxidation and oriented immobilization of multicopper oxidases for the development of glucose/O biofuel cells.

机构信息

Université Grenoble Alpes, DCM UMR 5250, F-38000 Grenoble, France CNRS, DCM UMR 5250, F-38000 Grenoble, France.

Department of Materials Science and Engineering, Graduate School of Engineering Science, Osaka University, 1-3 Machikaneyama-Cho, Toyonaka, Osaka 560-8531, Japan.

出版信息

Biosens Bioelectron. 2017 Jan 15;87:957-963. doi: 10.1016/j.bios.2016.09.054. Epub 2016 Sep 16.

Abstract

We report the functionalization of multi-walled carbon nanotubes (MWCNTs) electrodes by a bifunctional nitroaromatic molecule accomplished via π-π interactions of a pyrene derivative. DTNB (5,5'-dithiobis(2-nitrobenzoic acid)) has the particularity to possess both electroactivable nitro groups and negatively charged carboxylic groups. The integration of the DTNB-modified MWCNTs was evaluated for different bioelectrocatalytic systems. The immobilized DTNB-based electrodes showed electrocatalytic activity toward the oxidation of the reduced form of nicotinamide adenine dinucleotide (NADH) with low overpotential of -0.09V vs Ag/AgCl at neutral pH. Glucose dehydrogenase was successfully immobilized at the surface of DTNB-based electrodes and, in the presence of NAD, the resulting bioelectrode achieved efficient glucose oxidation with high current densities of 2.03mAcm. On the other hand, the aromatic structure and the negatively charged nature of the DTNB provoked orientation of both laccase and bilirubin oxidase onto the electrode, which enhanced their ability to undergo a direct electron transfer for oxygen reduction. Due to the proper orientation, low overpotentials were obtained (ca. 0.6V vs Ag/AgCl) and high electrocatalytic currents of about 3.5mAcm were recorded at neutral pH in O saturated conditions for bilirubin oxidase electrodes. The combination of these bioanodes and bilirubin oxidase biocathodes provided glucose/O enzymatic biofuel cells (EBFC) exhibiting an open-circuit potential of 0.640V, with an associated maximum current density of 2.10mAcm. Moreover, the fuel cell delivered a maximum power density of 0.50mWcm at 0.36 V.

摘要

我们报告了通过π-π相互作用将双功能硝基芳烃分子功能化多壁碳纳米管(MWCNTs)电极。DTNB(5,5'-二硫代双(2-硝基苯甲酸))具有独特的性质,既具有电活性的硝基基团又具有带负电荷的羧酸基团。评估了 DTNB 修饰的 MWCNTs 对不同生物电化学系统的整合。固定化的基于 DTNB 的电极对烟酰胺腺嘌呤二核苷酸(NADH)的还原形式的氧化表现出电催化活性,在中性 pH 下的过电位低至-0.09V 对 Ag/AgCl。葡萄糖脱氢酶成功地固定在基于 DTNB 的电极表面,并且在 NAD 的存在下,所得生物电极实现了葡萄糖的有效氧化,具有 2.03mAcm 的高电流密度。另一方面,DTNB 的芳香结构和带负电荷的性质促使漆酶和胆红素氧化酶定向到电极上,这增强了它们进行氧还原的直接电子转移的能力。由于适当的取向,在中性 pH 和 O 饱和条件下,对于胆红素氧化酶电极,获得了低过电位(约 0.6V 对 Ag/AgCl)和约 3.5mAcm 的高电催化电流。这些生物阳极和胆红素氧化酶生物阴极的组合提供了葡萄糖/O 酶促生物燃料电池(EBFC),其开路电位为 0.640V,相关的最大电流密度为 2.10mAcm。此外,燃料电池在 0.36 V 时提供了 0.50mWcm 的最大功率密度。

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