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用于卓越葡萄糖电氧化性能的自支撑三维铂钯铜纳米线网络

Self-Supported 3D PtPdCu Nanowires Networks for Superior Glucose Electro-Oxidation Performance.

作者信息

Wang Kaili, He Shuang, Zhang Bowen, Cao Zhen, Zhou Tingting, He Jia, Chu Ganghui

机构信息

Laboratory of Xinjiang Native Medicinal and Edible Plant Resources Chemistry, Kashi University, Kashi 844008, China.

College Chemistry & Chemistry Engineering, Weifang University, Weifang 261061, China.

出版信息

Molecules. 2023 Aug 2;28(15):5834. doi: 10.3390/molecules28155834.

Abstract

The development of non-enzymatic and highly active electrocatalysts for glucose oxidation with excellent durability for blood glucose sensors has aroused widespread concern. In this work, we report a fast, simple, and low-cost NaBH reduction method for preparing ultrafine ternary PtPdCu alloy nanowires (NWs) with a 3D network nanostructure. The PtPdCu NWs catalyst presents significant efficiency for glucose oxidation-reduction (GOR), reaching an oxidative peak-specific activity of 0.69 mA/cm, 2.6 times that of the Pt/C catalyst (0.27 mA/cm). Further reaction mechanism investigations show that the NWs have better conductivity and smaller electron transfer resistance. Density functional theory (DFT) calculations reveal that the alloying effect of PtPdCu could effectively enhance the adsorption energy of glucose and reduce the activation energy of GOR. The obtained NWs also show excellent stability over 3600 s through a chronoamperometry test. These self-supported ultrafine PtPdCu NWs with 3D networks provide a new functional material for building blood glucose sensors and direct glucose fuel cells.

摘要

开发用于葡萄糖氧化的非酶且高活性的电催化剂,并使其具有优异的耐久性以用于血糖传感器,这引起了广泛关注。在这项工作中,我们报道了一种快速、简单且低成本的硼氢化钠还原法,用于制备具有三维网络纳米结构的超细三元铂钯铜合金纳米线(NWs)。铂钯铜纳米线催化剂对葡萄糖氧化还原(GOR)具有显著效率,氧化峰比活性达到0.69 mA/cm,是铂碳催化剂(0.27 mA/cm)的2.6倍。进一步的反应机理研究表明,纳米线具有更好的导电性和更小的电子转移电阻。密度泛函理论(DFT)计算表明,铂钯铜的合金化效应可有效提高葡萄糖的吸附能并降低葡萄糖氧化还原的活化能。通过计时电流法测试,所获得的纳米线在3600 s内也表现出优异的稳定性。这些具有三维网络的自支撑超细铂钯铜纳米线为构建血糖传感器和直接葡萄糖燃料电池提供了一种新型功能材料。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea47/10421379/a3a7cc9c72cc/molecules-28-05834-g001.jpg

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