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基于电化学策略的具有增强过氧化物酶样活性的超小 CuO/GDYO 纳米酶:用于有机磷农药的实用比色检测。

Ultra-small CuO/GDYO nanozyme with boosting peroxidase-like activity via electrochemical strategy: Toward applicable colorimetric detection of organophosphate pesticides.

机构信息

School of Ecological and Environmental Sciences, Shanghai Engineering Research Center of Biotransformation of Organic Solid Waste, Shanghai Key Lab for Urban Ecological Processes and Eco-Restoration, East China Normal University, 500 Dongchuan Road, Shanghai, 200241, China; Institute of Eco-Chongming, 3663 Zhongshan Road, Shanghai, 200062, China.

Changjiang Basin Ecology and Environment Monitoring and Scientific Research Center, Changjiang Basin Ecology and Environment Administration, Ministry of Ecology and Environment, 13 Yongqing Road, Wuhan, 430019, China.

出版信息

Talanta. 2024 Nov 1;279:126639. doi: 10.1016/j.talanta.2024.126639. Epub 2024 Jul 31.

Abstract

In this paper, an ultra-small-sized CuO/GDYO nanozyme in situ grown on ITO glass was rationally synthesized from mixed precursors of graphdiyne oxide (GDYO) and copper based infinite coordination polymer (Cu-ICP, consisting of Cu ions and two organic ligands 3,5-di-tert-butylcatechol and 1,4-bis(imidazole-1-ylmethyl)benzene) via mild and simple electrochemical strategy. On one hand, the preferential electro-reduction of Cu-ICP enabled the formation of ultra-small CuO with Cu(I) as the main component and avoided the loss of oxygen-containing functional groups and defects on the surface of GDYO; on the other hand, GDYO can also serve as electroless reductive species to facilitate the electrochemical deposition of CuO and turn itself to a higher oxidation state with more exposed functional groups and defects. This one-stone-two-birds electrochemical strategy empowered CuO/GDYO nanozyme with superior peroxidase-mimicking activity and robust anchoring stability on ITO glass, thus enabled further exploration of the portable device with availability for point-of-use applications. Based on the organophosphorus pesticides (OPs) blocked acetylcholinesterase (AChE) activity, the competitive redox reaction was regulated to initiate the chromogenic reaction of 3,3',5,5'-tetramethylbenzidine (TMB) catalyzed by CuO/GDYO peroxidase-like nanozyme, which laid out a foundation for the detection of OPs (with chlorpyrifos as an example). With a detection of limit low to 0.57 nM, the OPs residues during agricultural production can be directly monitored by the portable device we developed.

摘要

本文通过温和简单的电化学策略,从混合前体氧化石墨炔(GDYO)和基于铜的无限配位聚合物(Cu-ICP,由 Cu 离子和两种有机配体 3,5-二叔丁基邻苯二酚和 1,4-双(咪唑-1-基甲基)苯组成)原位合成了在 ITO 玻璃上生长的超小尺寸 CuO/GDYO 纳米酶。一方面,Cu-ICP 的优先电还原导致形成了主要成分是 Cu(I)的超小 CuO,同时避免了 GDYO 表面含氧官能团和缺陷的损失;另一方面,GDYO 也可以作为无电还原物种,促进 CuO 的电化学沉积,并将自身转化为具有更多暴露官能团和缺陷的更高氧化态。这种一石二鸟的电化学策略使 CuO/GDYO 纳米酶具有卓越的过氧化物酶模拟活性和在 ITO 玻璃上的牢固锚定稳定性,从而进一步探索了具有便携性和适用于现场应用的设备。基于有机磷农药(OPs)对乙酰胆碱酯酶(AChE)的抑制作用,调节竞争氧化还原反应,引发 CuO/GDYO 过氧化物酶样纳米酶催化的 3,3',5,5'-四甲基联苯胺(TMB)的显色反应,为 OPs 的检测(以毒死蜱为例)奠定了基础。该检测方法的检测限低至 0.57 nM,可直接通过我们开发的便携式设备监测农业生产过程中的 OPs 残留。

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