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基于芘的金属-有机框架,具有配位增强电化学发光,用于构建生物传感平台。

Pyrene-Based Metal-Organic Frameworks with Coordination-Enhanced Electrochemiluminescence for Fabricating a Biosensing Platform.

机构信息

Key Laboratory of Luminescence Analysis and Molecular Sensing (Southwest University), Ministry of Education; Chongqing Engineering Laboratory of Nanomaterials and Sensor Technologies, College of Chemistry and Chemical Engineering, Southwest University, Chongqing 400715, P. R. China.

Analytical and Testing Center, Southwest University, Chongqing 400715, P. R. China.

出版信息

Anal Chem. 2024 Oct 15;96(41):16362-16369. doi: 10.1021/acs.analchem.4c03782. Epub 2024 Oct 2.

Abstract

Enhancing the electrochemiluminescence (ECL) properties of polycyclic aromatic hydrocarbons (PAHs) is a significant topic in the ECL field. Herein, we elaborately chose PAH derivative luminophore 1,3,6,8-tetrakis(-benzoic acid)pyrene (HTBAPy) as the organic ligand to synthesize a new Ru-complex-free ECL-active metal-organic framework Dy-TBAPy. Interestingly, Dy-TBAPy exhibited a more brilliant ECL emission and higher ECL efficiency than HTBAPy aggregates. On the one hand, TBAPy luminophores were assembled into rigid MOF skeleton via coordination bonds, which not only enlarged the distance between pyrene cores to eliminate the aggregation-caused quenching (ACQ) effect but also obstructed the intramolecular motions of TBAPy to diminish the nonradiative relaxation, thus realizing a remarkable coordination-enhanced ECL. On the other hand, the ultrahigh porosity of Dy-TBAPy was beneficial to the diffusion of electrons, ions, and coreactant (SO) in the skeleton, which efficiently boosted the excitation of interior TBAPy luminophores and led to a high utilization ratio of TBAPy, further improving ECL properties. More intriguingly, the ECL intensity of the Dy-TBAPy/SO system was about 4.1, 87.0-fold higher than those of classic Ru(bpy)/TPrA and Ru(bpy)/SO systems. Considering the aforementioned fabulous ECL performance, Dy-TBAPy was used as an ECL probe to construct a supersensitive ECL biosensor for microRNA-21 detection, which showed an ultralow detection limit of 7.55 aM. Overall, our study manifests that coordinatively assembling PAHs into MOFs is a simple and practicable way to improve ECL properties, which solves the ACQ issue of PAHs and proposes new ideas for developing highly efficient Ru-complex-free ECL materials, therefore providing promising opportunities to fabricate high-sensitivity ECL biosensors.

摘要

增强多环芳烃 (PAHs) 的电致化学发光 (ECL) 性质是 ECL 领域的一个重要课题。在此,我们精心选择了 PAH 衍生物发光体 1,3,6,8-四(-苯甲酸)芘 (HTBAPy) 作为有机配体来合成一种新的无 Ru 配合物的 ECL 活性金属-有机骨架 Dy-TBAPy。有趣的是,Dy-TBAPy 表现出比 HTBAPy 聚集体更明亮的 ECL 发射和更高的 ECL 效率。一方面,TBAPy 发光体通过配位键组装成刚性 MOF 骨架,这不仅增大了芘核之间的距离以消除聚集引起的淬灭 (ACQ) 效应,而且阻碍了 TBAPy 的分子内运动以减少非辐射弛豫,从而实现了显著的配位增强 ECL。另一方面,Dy-TBAPy 的超高孔隙率有利于骨架中电子、离子和共反应物 (SO) 的扩散,这有效地促进了内部 TBAPy 发光体的激发,导致 TBAPy 的高利用率,进一步改善了 ECL 性质。更有趣的是,Dy-TBAPy/SO 体系的 ECL 强度比经典的 Ru(bpy)/TPrA 和 Ru(bpy)/SO 体系高约 4.1、87.0 倍。考虑到上述出色的 ECL 性能,Dy-TBAPy 被用作 ECL 探针来构建用于 microRNA-21 检测的超灵敏 ECL 生物传感器,其检测限低至 7.55 aM。总的来说,我们的研究表明,将 PAHs 通过配位组装到 MOFs 中是一种简单可行的方法,可以改善 ECL 性质,解决了 PAHs 的 ACQ 问题,并为开发高效无 Ru 配合物的 ECL 材料提供了新的思路,因此为制备高灵敏度的 ECL 生物传感器提供了有前途的机会。

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