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制备空心 ZnO-CoO 纳米复合材料,该复合材料由双金属有机骨架衍生而来,表面覆盖 Pd 纳米粒子和 MWCNTs,可用于丹参醇药物的高灵敏度检测。

Fabrication of hollow ZnO-CoO nanocomposite derived from bimetallic-organic frameworks capped with Pd nanoparticles and MWCNTs for highly sensitive detection of tanshinol drug.

机构信息

Department of Chemistry, School of Sciences, Hebei University of Science and Technology, Shijiazhuang 050018, China.

Department of Chemistry, School of Sciences, Hebei University of Science and Technology, Shijiazhuang 050018, China.

出版信息

Mater Sci Eng C Mater Biol Appl. 2020 Mar;108:110214. doi: 10.1016/j.msec.2019.110214. Epub 2019 Nov 12.

DOI:10.1016/j.msec.2019.110214
PMID:31923933
Abstract

In this work, PdNPs@ZnO-CoO was synthesized via the facile oxidation treatment of bimetallic ZnCo-zeolitic-imidazolate-framework (ZnCo-ZIF) followed by in situ chemical reduction of PdNPs on the surface of the nanocrystals. After combined with MWCNTs, the PdNPs@ZnO-CoO-MWCNTs nanocomposites were formed, which were then exploited as novel electrode materials to construct the non-enzyme electrochemical sensors for high-sensitivity detection of tanshinol. Due to the high catalytic activity of multi-metallic PdNPs@ZnO-CoO, and the excellent charge transfer property between imidazole groups of the ligands in MOFs and MWCNTs, the obtained sensor exhibited high sensitivity for tanshinol detection under optimum experimental conditions. The sensor shows two well linear relationship between the current and tanshinol concentration in the range of 0.002-0.69 mM (R = 0.989) and 0.69-3.75 mM (R = 0.994) with the corresponding sensitivity of 59.16 μA mM and 19.08 μA mM. And the limit of detection (LOD) was calculated to be 0.019 μM (S/N = 3). Furthermore, with the advantages of good repeatability, stability and selectivity, the fabricated sensor can be successfully applied to measurement of tanshinol in real medicinal liquids samples. Our results would accelerate the applications of MOFs in electrochemical field and provide insights into design of multifunctional non-enzyme sensing materials for various applications in biocatalysis, bioanalysis and drug testing.

摘要

在这项工作中,通过双金属 ZnCo-沸石咪唑骨架(ZnCo-ZIF)的简便氧化处理,然后在纳米晶体表面原位化学还原 PdNPs,合成了 PdNPs@ZnO-CoO。与 MWCNTs 结合后,形成了 PdNPs@ZnO-CoO-MWCNTs 纳米复合材料,然后将其用作新型电极材料,构建非酶电化学传感器,用于丹参醇的高灵敏度检测。由于多金属 PdNPs@ZnO-CoO 的高催化活性,以及配体中咪唑基团与 MWCNTs 之间的优异电荷转移特性,在最佳实验条件下,所获得的传感器对丹参醇的检测表现出高灵敏度。该传感器在 0.002-0.69mM(R=0.989)和 0.69-3.75mM(R=0.994)范围内的电流与丹参醇浓度之间呈现出两个良好的线性关系,相应的灵敏度分别为 59.16μA mM和 19.08μA mM。检测限(LOD)计算为 0.019μM(S/N=3)。此外,该制备的传感器具有良好的重复性、稳定性和选择性等优点,可成功应用于实际药用液体样品中丹参醇的测定。我们的研究结果将加速 MOFs 在电化学领域的应用,并为设计用于生物催化、生物分析和药物检测等各种应用的多功能非酶传感材料提供新的思路。

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