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将激光诱导石墨烯与分级 NiCo 层状双氢氧化物纳米片结合,用于食品和血清中葡萄糖的电化学测定。

Incorporation of laser-induced graphene with hierarchical NiCo layered double hydroxide nanosheets for electrochemical determination of glucose in food and serum.

机构信息

School of Chemistry and Environmental Engineering, School of Materials Science and Engineering, Key Laboratory of Green Chemical Engineering Process of Ministry of Education, Hubei Key Laboratory of Novel Reactor and Green Chemical Technology, Wuhan Institute of Technology, Wuhan, 430205, China.

School of Chemistry and Environmental Engineering, School of Materials Science and Engineering, Key Laboratory of Green Chemical Engineering Process of Ministry of Education, Hubei Key Laboratory of Novel Reactor and Green Chemical Technology, Wuhan Institute of Technology, Wuhan, 430205, China.

出版信息

Anal Chim Acta. 2024 Nov 15;1329:343194. doi: 10.1016/j.aca.2024.343194. Epub 2024 Sep 3.

Abstract

Dependable and sensitive glucose (Glu) testing in foodstuff and blood serum is highly desirable to prevent and treat diabetes. Electrochemical quantification of Glu has attracted great interests due to the advantages, including simple operation, higher sensitivity, easy miniaturization, ease of on-site and wearable detection as well as fast response. High costs and environmental dependence of enzymes pose a challenge to the electrochemical enzymatic biosensors. Nonenzymatic electrochemical Glu sensors are urgently needed to aid the Glu detection in human serum and food samples. To fabricate flexible Glu electrochemical sensors, designing suitable electrode substrate and efficient electrocatalyst is of paramount significance. Herein, the porous patterned laser-induced graphene (LIG) was fabricated on polyimide substrates through an efficient laser-inducing technology, and then used directly as the electrode substrate. Electrochemical deposition of NiCo layered double hydroxide (LDH) nanoflakes on the LIG surface was then conducted to achieve NiCo-LDH/LIG electrode as a Glu sensor. Under optimal conditions, this sensor displays a low detection limit of 0.05 μM. Two sets of broad detection linear ranges were found to be from 0.5 to 270 μM and from 0.27 to 3.6 mM, with high sensitivities of 9.750 μA μM cm and 3.760 μA μM cm, respectively. The enhanced performance was ascribed to the cooperative action of NiCo-LDH and LIG, in which porous LIG provides extraordinary electroconductibility and a high surface area, while NiCo-LDH offers numerous exposed active sites and outstanding electrocatalytic performance. Practical application was further verified during the Glu detection in human serum and food samples. This research confirms that the NiCo-LDH/LIG composite is a prospective electrode for high-performance Glu sensor and provides a way of developing nonenzymatic electrochemical sensors to analyze the Glu in human serum and food samples, opening new avenues in electrochemical sensing.

摘要

在食品和血清中进行可靠且灵敏的葡萄糖 (Glu) 检测对于预防和治疗糖尿病非常重要。电化学定量检测 Glu 因其具有操作简单、灵敏度高、易于微型化、便于现场和可穿戴检测以及响应快速等优点而受到极大关注。酶的高成本和环境依赖性给电化学酶生物传感器带来了挑战。迫切需要非酶电化学 Glu 传感器来辅助人血清和食物样本中的 Glu 检测。为了制备柔性 Glu 电化学传感器,设计合适的电极基底和高效的电催化剂至关重要。在此,通过高效的激光诱导技术在聚酰亚胺基底上制备了多孔图案化激光诱导石墨烯 (LIG),然后直接将其用作电极基底。然后在 LIG 表面上进行电化学沉积 NiCo 层状双氢氧化物 (LDH) 纳米片,以获得 NiCo-LDH/LIG 电极作为 Glu 传感器。在最佳条件下,该传感器的检测下限低至 0.05 μM。发现了两个宽检测线性范围,分别为 0.5 至 270 μM 和 0.27 至 3.6 mM,灵敏度分别为 9.750 μA μM cm 和 3.760 μA μM cm。增强的性能归因于 NiCo-LDH 和 LIG 的协同作用,其中多孔 LIG 提供了非凡的导电性和高表面积,而 NiCo-LDH 提供了众多暴露的活性位点和出色的电催化性能。在人血清和食物样本中的 Glu 检测中进一步验证了实际应用。这项研究证实,NiCo-LDH/LIG 复合材料是高性能 Glu 传感器的有前途的电极,并提供了一种开发非酶电化学传感器来分析人血清和食物样本中 Glu 的方法,为电化学传感开辟了新途径。

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