Department of Mathematics & Sciences, College of Arts & Applied Sciences, Dhofar University, 211, Salalah, Oman.
College of Engineering, Dhofar University, 211, Salalah, Oman.
Sci Rep. 2023 Apr 17;13(1):6210. doi: 10.1038/s41598-023-32719-w.
The escalating risk of diabetes and its consequential impact on cardiac, vascular, ocular, renal, and neural systems globally have compelled researchers to devise cost-effective, ultrasensitive, and reliable electrochemical glucose sensors for the early diagnosis of diabetes. Herein, we utilized advanced composite materials based on nanoporous CuO, CuO/Ag, and CuO/Ag/NiO for glucose detection. The crystalline structure and surface morphology of the synthesized materials were ascertained via powder X-ray diffraction (P-XRD), energy dispersive X-ray (EDX) spectroscopy, scanning electron microscopy (SEM) and transmission electron microscopy (TEM) analysis. The electro-catalytic properties of the manufactured electrode materials for glucose electro-oxidation in alkaline conditions were probed using cyclic voltammetry (CV) and differential pulse voltammetry (DPV) techniques. Notably, the CuO/Ag/NiO electrode material exhibited exceptional performance as a non-enzymatic glucose sensor, displaying a linear range of 0.001-5.50 mM, an ultrahigh sensitivity of 2895.3 μA mM cm, and a low detection limit of 0.1 μM. These results suggest that nanoporous CuO/Ag/NiO-based composite materials are a promising candidate for early diagnosis of hyperglycemia and treatment of diabetes. Furthermore, non-enzymatic glucose sensors may pave the way for novel glucometer markets.
全球范围内糖尿病风险不断上升,及其对心脏、血管、眼部、肾脏和神经系统的影响,促使研究人员开发出具有成本效益、超灵敏和可靠的电化学葡萄糖传感器,用于糖尿病的早期诊断。在此,我们利用基于纳米多孔 CuO、CuO/Ag 和 CuO/Ag/NiO 的先进复合材料来进行葡萄糖检测。通过粉末 X 射线衍射 (P-XRD)、能谱 (EDX) 光谱、扫描电子显微镜 (SEM) 和透射电子显微镜 (TEM) 分析确定了合成材料的晶体结构和表面形态。使用循环伏安法 (CV) 和差分脉冲伏安法 (DPV) 技术研究了所制得的电极材料在碱性条件下对葡萄糖电氧化的电催化性能。值得注意的是,CuO/Ag/NiO 电极材料作为非酶葡萄糖传感器表现出优异的性能,具有 0.001-5.50 mM 的线性范围、超高的灵敏度 2895.3 μA mM cm 和低检测限 0.1 μM。这些结果表明,基于纳米多孔 CuO/Ag/NiO 的复合材料是早期诊断高血糖和治疗糖尿病的有前途的候选材料。此外,非酶葡萄糖传感器可能为新型血糖仪市场铺平道路。