Long Hangyu, Wen Kui, Liu Cuiyin, Liu Xuezhang, Hu Huawen
School of Materials Science and Hydrogen Energy, Foshan University, Foshan 528000, China.
National Engineering Laboratory for Modern Materials Surface Engineering Technology, Guangdong Institute of New Materials, Guangzhou 510651, China.
Molecules. 2023 Aug 1;28(15):5798. doi: 10.3390/molecules28155798.
High-performance non-enzymatic glucose sensor composite electrodes were prepared by loading Ni onto a boron-doped diamond (BDD) film surface through a thermal catalytic etching method. A carbon precipitate with a desired thickness could be formed on the Ni/BDD composite electrode surface by tuning the processing conditions. A systematic study regarding the influence of the precipitated carbon layer thickness on the electrocatalytic oxidation of glucose was conducted. While an oxygen plasma was used to etch the precipitated carbon, Ni/BDD-based composite electrodes with the precipitated carbon layers of different thicknesses could be obtained by controlling the oxygen plasma power. These Ni/BDD electrodes were characterized by SEM microscopies, Raman and XPS spectroscopies, and electrochemical tests. The results showed that the carbon layer thickness exerted a significant impact on the resulting electrocatalytic performance. The electrode etched under 200 W power exhibited the best performance, followed by the untreated electrode and the electrode etched under 400 W power with the worst performance. Specifically, the electrode etched under 200 W was demonstrated to possess the highest sensitivity of 1443.75 μA cm mM and the lowest detection limit of 0.5 μM.
通过热催化蚀刻法将镍负载到硼掺杂金刚石(BDD)薄膜表面,制备了高性能非酶葡萄糖传感器复合电极。通过调整工艺条件,可以在Ni/BDD复合电极表面形成具有所需厚度的碳沉淀。对沉淀碳层厚度对葡萄糖电催化氧化的影响进行了系统研究。当使用氧等离子体蚀刻沉淀碳时,通过控制氧等离子体功率可以获得具有不同厚度沉淀碳层的基于Ni/BDD的复合电极。这些Ni/BDD电极通过扫描电子显微镜(SEM)、拉曼光谱和X射线光电子能谱(XPS)以及电化学测试进行表征。结果表明,碳层厚度对所得电催化性能有显著影响。在200W功率下蚀刻的电极表现出最佳性能,其次是未处理的电极,在400W功率下蚀刻的电极性能最差。具体而言,在200W下蚀刻的电极具有1443.75μA cm mM的最高灵敏度和0.5μM的最低检测限。