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Electrocatalytic Efficiency Analysis of Catechol Molecules for NADH Oxidation during Nanoparticle Collision

机译:纳米级碰撞过程中邻苯二酚分子对NADH氧化的电催化效率分析

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Electrocatalysis of molecules is a hot research topic in biological and energy-related chemistry. Here, we develop a new system to study the electrocatalytic efficiency of a single catechol molecule for NADH oxidation by single functionalized nanoparticle collision at ultramicroelectrodes (UMEs). The proposed system is composed of gold nanoparticles (AuNPs) functionalized with catechol molecules and a carbon-fiber ultramicroelectrode. In the absence of NADH, when a functionalized AuNP collides with an UME at a suitable voltage, a small current spike is generated due to the oxidation of catechol molecules modified on the surface of AuNP. In the presence of NADH, the current spike is significantly amplified by the combined effects of the oxidation and electrocatalysis for NADH of catechol molecules. By analyzing the variations of the average peak charges and durations without or with NADH, we calculate that around five thousands NADH molecules could be catalyzed per second by a single catechol molecule, suggesting the successful establishment of this novel catalytic system. Thus, the proposed strategy could be used as a promising platform for research of other molecular electrocatalytic systems.
机译:分子的电催化是生物和能源相关化学领域的热门研究课题。在这里,我们开发了一个新的系统来研究单个儿茶酚分子对超微电极(UMEs)上单个功能化的纳米粒子碰撞的NADH氧化的电催化效率。拟议的系统由用儿茶酚分子官能化的金纳米颗粒(AuNPs)和碳纤维超微电极组成。在没有NADH的情况下,当官能化的AuNP在适当的电压下与UME发生碰撞时,由于在AuNP表面修饰的邻苯二酚分子的氧化,会产生小的电流尖峰。在存在NADH的情况下,邻苯二酚分子NADH的氧化和电催化的综合作用会显着放大电流尖峰。通过分析不使用NADH或使用NADH的平均峰值电荷和持续时间的变化,我们计算出单个邻苯二酚分子每秒可催化约五千个NADH分子,表明该新型催化体系的成功建立。因此,所提出的策略可以用作研究其他分子电催化系统的有前途的平台。

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