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MnO 嵌入花状分级多孔碳微球的简便合成及其作为增强电催化剂用于灵敏检测咖啡酸。

Facile synthesis of MnO-embedded flower-like hierarchical porous carbon microspheres as an enhanced electrocatalyst for sensitive detection of caffeic acid.

机构信息

College of Chemistry and Material Science, Hengyang Normal University, Hengyang 421008, PR China; Hunan Provincial Key Laboratory of Efficient and Clean Utilization of Manganese Resources, Central South University, Changsha 410083, Hunan, PR China; Key Laboratory of Functional Organometallic Materials, Hengyang Normal University, Hengyang 421008, PR China.

Hunan Provincial Key Laboratory of Efficient and Clean Utilization of Manganese Resources, Central South University, Changsha 410083, Hunan, PR China.

出版信息

Anal Chim Acta. 2017 Sep 8;985:155-165. doi: 10.1016/j.aca.2017.07.002. Epub 2017 Jul 12.

Abstract

Tailored designs/fabrications of hierarchical porous advanced electrode materials are of great importance for developing high-performance electrochemical sensors. Herein, we demonstrate a simple and low-cost in situ chemical approach for the facile synthesis of MnO-embedded hierarchical porous carbon microspheres (MnO/CM). By the characterizations of scanning electron microscopy, X-ray photoelectron spectroscopy, X-ray powder diffraction and energy dispersive spectroscopy, we evidenced that the synthesized product were flower-like carbon microspheres (CM) assembled by the bent flakes with thickness of about several nanometers and MnO nanorods were highly dispersed and successfully decorated on the CM layers, resulting in a rough surface and three-dimensional microstructure. The greatest benefit from the combined porous CM with MnO nanorods is that the MnO/CM modified electrode has the synergetic catalysis effect on the electro-oxidation of caffeic acid, leading to the remarkable increase in the electron transfer rate and significant decrease in the over-potential for the caffeic acid oxidation in contrast to the bare electrode and CM modified electrode. This implies that the prepared MnO/CM can be employed as an enhanced electrocatalyst for the sensitive detection of caffeic acid. Under the optimum conditions, the anodic peak current of caffeic acid is linear with its concentration in the range of 0.01-15.00 μmol L, and a detection limit of 2.7 nmol L is achieved based on S/N = 3. The developed sensor shows good selectivity, sensitivity, reproducibility, and also excellent recovery in the detections of real samples, revealing the promising practicality of the sensor for the caffeic acid detection.

摘要

定制设计/制造分层多孔先进电极材料对于开发高性能电化学传感器非常重要。在此,我们展示了一种简单且低成本的原位化学方法,用于简便合成嵌入分层多孔碳微球(MnO/CM)的 MnO。通过扫描电子显微镜、X 射线光电子能谱、X 射线粉末衍射和能谱的表征,我们证明了所合成的产物是由厚度约为几纳米的弯曲薄片组装而成的花状碳微球(CM),MnO 纳米棒高度分散并成功地修饰在 CM 层上,导致表面粗糙和具有三维微观结构。多孔 CM 与 MnO 纳米棒的结合带来的最大好处是,MnO/CM 修饰电极对咖啡酸的电氧化具有协同催化作用,导致电子转移速率显著增加,咖啡酸氧化的过电位显著降低,与裸电极和 CM 修饰电极相比。这意味着制备的 MnO/CM 可用作增强的电催化剂,用于灵敏检测咖啡酸。在最佳条件下,咖啡酸的阳极峰电流在 0.01-15.00 μmol L 的范围内与其浓度呈线性关系,基于 S/N = 3,检测限为 2.7 nmol L。所开发的传感器表现出良好的选择性、灵敏度、重现性,并且在真实样品的检测中也表现出出色的回收率,表明该传感器在咖啡酸检测方面具有良好的实用前景。

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