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以 1,10-菲啰啉-2,9-二羧酸为预组织配体的高度分散 Fe-N-C 纳米片的理性设计:增强电化学发光检测四环素。

Rational Design of a Highly Dispersed Fe-N-C Nanosheet with 1,10-Phenanthroline-2,9-Dicarboxylic Acid as a Preorganized Ligand: Boosted Electrochemiluminescence Detection of Tetracycline.

机构信息

School of Environmental and Biological Engineering, Nanjing University of Science and Technology, Nanjing 210094, P. R. China.

Department of Clinical Laboratory, Zhongda Hospital, Southeast University School of Medicine, Nanjing 210009, P. R. China.

出版信息

Anal Chem. 2022 Jan 18;94(2):1325-1332. doi: 10.1021/acs.analchem.1c04558. Epub 2021 Dec 23.

DOI:10.1021/acs.analchem.1c04558
PMID:34939788
Abstract

In view of the shortcomings of the current coreactant electrochemiluminescence (ECL) and inspired by natural oxygen (O) reduction metalloenzymes, a novel ECL amplification strategy was established. A pyrolytic iron- and nitrogen-doped (Fe-N-C) nanosheet rich in singly ionized oxygen vacancy (V) defects was rationally designed by destroying the highly saturated coordination with a preorganized ligand 1,10-phenanthroline-2,9-dicarboxylic acid (PDA). Extraordinary catalytic activity for O activation was obtained via screening a special pyrolysis temperature using spectroscopic and electrochemical methods. The high-spin ferric centers of highly dispersed FeC nanoclusters and abundant carbon and oxygen vacancy defects fully contributed to the inherent catalytic activity. ECL amplification was achieved by integrating the material with luminol to generate redox-active radicals from dissolved O and simultaneously shorten the transferring distance of radicals. Tetracycline (TC), which posed a growing threat to aquatic biodiversity and environmental safety, as a model antibiotic was successfully detected with a detection limit of 3.88 nM (S/N = 3), clarifying a promising application prospect of this new effective ECL amplification strategy in biological analysis and environmental monitoring.

摘要

鉴于当前共反应物电化学发光(ECL)的缺点,并受到天然氧(O)还原金属酶的启发,建立了一种新型的 ECL 放大策略。通过破坏高度饱和的配位作用,合理设计了一种富含单离子氧空位(V)缺陷的热解铁和氮掺杂(Fe-N-C)纳米片,预组织配体 1,10-邻菲咯啉-2,9-二羧酸(PDA)。通过使用光谱和电化学方法筛选特殊的热解温度,获得了对 O 激活的非凡催化活性。高度分散的 FeC 纳米簇中的高自旋三价铁中心和丰富的碳和氧空位缺陷充分贡献了固有催化活性。通过将该材料与鲁米诺集成,可在溶解氧中生成氧化还原活性自由基,同时缩短自由基的转移距离,从而实现 ECL 放大。四环素(TC)作为一种不断威胁水生生物多样性和环境安全的模型抗生素,被成功检测到,检测限为 3.88 nM(S/N = 3),这阐明了这种新的有效 ECL 放大策略在生物分析和环境监测中的应用前景。

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