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Toward More Efficient Bioelectrocatalytic Oxidation of Ethanol for Amperometric Sensing and Biofuel Cell Technology

机译:寻求更高效的乙醇生物电催化氧化技术,用于安培传感和生物燃料电池技术

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摘要

The integrated, structured, and multifunctional bioelectrocatalytic system for effective oxidation of ethanol is developed here. The concept is based on the layer-by-layer (LbL) assembly through electrostatic attraction of positively charged, multiwalled carbon nanotubes and the controlled combination of dehydrogenase enzymes. More specifically, the LbL technique was employed for sequential immobilization of two dehydrogenase enzymes and poly(diallyldi-methylammonium chloride)-covered multiwalled carbon nanotubes onto a glassy carbon electrode substrate. Both monoenzymatic [utilizing a single enzyme, alcohol dehydrogenase (ADH)] and bienzymatic (anchoring sequentially both ADH and aldehyde dehydrogenase) systems were tested. Multilayers were characterized using scanning electron microscopy, infrared spectroscopy, and cyclic voltammetry. The results are consistent with the view that our approach enables good control of distribution and efficient utilization of both enzymes within the biocomposite film and leads to sizable enhancement of the oxidation of ethanol through significant (more than 2-fold) increase of bioelectrocatalytic currents and by shifting the ethanol oxidation potential to 0.1 V (vs Ag/AgCl) or decreasing the overvoltage by ca. 200 mV in comparison with the monoenzymatic electrode system. This simple biocomposite (enzyme-cascade) system permits fabrication of highly sensitive ethanol biosensors based on nicotinamide adenine dinucleotide coenzyme-dependent dehydrogenases. Our ethanol biosensor exhibited a good linearity ranging from 50 to 300 μM, and it was characterized by a high sensitivity of 118.8 μA mM~(-1) cm~(-2) as well as a low detection limit of 24 μM.
机译:本文开发了用于乙醇有效氧化的集成,结构化和多功能生物电催化系统。该概念基于通过带正电的多壁碳纳米管的静电吸引和脱氢酶的受控组合而进行的逐层(LbL)组装。更具体地说,LbL技术用于将两种脱氢酶和聚(二烯丙基二甲基氯化铵)覆盖的多壁碳纳米管顺序固定在玻璃碳电极基板上。测试了单酶法[利用单一酶,乙醇脱氢酶(ADH)]和双酶法(依次固定ADH和醛脱氢酶)系统。使用扫描电子显微镜,红外光谱和循环伏安法表征多层。结果与以下观点一致:我们的方法能够很好地控制生物复合膜中两种酶的分布和有效利用,并通过显着(超过2倍)增加生物电催化电流和通过乙醇的使用而导致乙醇氧化的显着增强。将乙醇的氧化电位移至0.1 V(vs Ag / AgCl)或将过电压降低约与单酶电极系统相比为200 mV。这种简单的生物复合(酶级联)系统允许制造基于烟酰胺腺嘌呤二核苷酸辅酶依赖性脱氢酶的高灵敏度乙醇生物传感器。我们的乙醇生物传感器具有良好的线性度,范围从50到300μM,并且具有118.8μAmM〜(-1)cm〜(-2)的高灵敏度以及24μM的低检测限。

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