利用具有晶格应变的新型 NiFeLDH@HsGY-NH2/MWCNTs 异质结构电化学传感器高效检测多菌灵。

IF 2.6 3区 化学 Q2 CHEMISTRY, ANALYTICAL
Na Li, Baokun Tang and Tao Zhu
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引用次数: 0

摘要

多菌灵(CBZ)被广泛用于作物保护,其残留物威胁着人类健康和环境。因此,开发一种有效的电催化剂对于高灵敏度地检测多菌灵非常重要。晶格应变工程是改变其电子结构并最终优化材料催化性能的有效策略,可作为一种改性方法来提高电化学传感器的检测性能。本文采用静电自组装方法制备了具有应变效应的NiFeLDH@HsGY-NH2/MWCNTs异质结。利用多种仪器技术分析了 NiFeLDH@HsGY-NH2/MWCNTs 的结构、形貌、组成、结晶度和电化学性能,其中几何相分析(GPA)和 X 射线衍射(XRD)图像证实了 NiFeLDH@HsGY-NH2/MWCNTs 中产生的晶格应变。结果表明,在最佳检测条件下,所制备的电化学传感器对多菌灵(CBZ)的线性范围为 0.05-50.00 μM,检测限为 10.00 nM(信噪比为 3)。通过分析复合材料催化性能提高的原因,发现 MWCNTs 复合材料不仅提高了 NiFeLDH 的电导率,还通过双重效应调节了金属原子的电子结构。这项研究为设计高效、低成本的催化剂以促进电化学传感器的应用提供了新的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient detection of carbendazim using an electrochemical sensor for a novel NiFeLDH@HsGY-NH2/MWCNTs heterostructure with lattice-strain†

Efficient detection of carbendazim using an electrochemical sensor for a novel NiFeLDH@HsGY-NH2/MWCNTs heterostructure with lattice-strain†

Carbendazim (CBZ) is widely used for crop protection and its residues threaten human health and the environment. Therefore, developing an effective electrocatalyst is important for the extremely sensitive detection of CBZ. Lattice-strain engineering is an effective strategy to change its electronic structure and ultimately optimize the catalytic performance of materials, which can be used as a modification method to improve the detection performance of electrochemical sensors. Herein, a NiFeLDH@HsGY-NH2/MWCNTs heterojunction with strain effect is prepared by the electrostatic self-assembly method. The structure, morphology, composition, crystallinity and electrochemical performance of NiFeLDH@HsGY-NH2/MWCNTs are analyzed using various instrumental techniques, in which geometric phase analysis (GPA) and X-ray diffraction (XRD) images confirm the lattice-strain generated in NiFeLDH@HsGY-NH2/MWCNTs. The results indicate that the prepared electrochemical sensor exhibited an excellent response for carbendazim (CBZ) in the linear range of 0.05–50.00 μM with a detection limit of 10.00 nM (S/N = 3) under the optimal detection conditions. By analyzing the reasons for the improvement of the catalytic performance of the composite material, it is found that the composite of MWCNTs not only improves the conductivity of NiFeLDH but also regulates the electronic structure of metal atoms through double effects. This study provides new insights into the design of efficient and low-cost catalysts to facilitate electrochemical sensor applications.

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来源期刊
Analytical Methods
Analytical Methods CHEMISTRY, ANALYTICAL-FOOD SCIENCE & TECHNOLOGY
CiteScore
5.10
自引率
3.20%
发文量
569
审稿时长
1.8 months
期刊介绍: Early applied demonstrations of new analytical methods with clear societal impact
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