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Imine-linked covalent organic framework with high crystallinity for constructing sensitive purine bases electrochemical sensor. | LitMetric

Imine-linked covalent organic framework with high crystallinity for constructing sensitive purine bases electrochemical sensor.

J Colloid Interface Sci

Key Laboratory of Eco-functional Polymer Materials of the Ministry of Education, Key Lab of Bioelectrochemistry and Environmental Analysis of Gansu Province, College of Chemistry and Chemical Engineering, Northwest Normal University, Gansu International Scientific and Technological Cooperation Base

Published: April 2024


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Article Abstract

In this work, a covalent organic framework (TADM-COF) with high crystallinity and large specific surface area (2597 m g) has been successfully synthesized using 1,3,5-(4-aminophenyl) benzene (TAPB) and 2,5-dimethoxy-p-phenyldiformaldehyde (DMTP). The COF was grown in situ on oxide particles to form core-shell nanocomposites (SiO@TADM COF, FeO@TADM COF and CoO@TADM COF) to realize its function as a shell material. Among them, the CoO@TADM COF with the highest electrochemical response to purine bases was further cross-linked with multi-walled carbon nanotubes (MWCNT) to construct a novel electrochemical sensor (CoO@TADM COF/MWCNT/GCE) for detection of purine bases. In this nanocomposite, CoO possesses rich catalytic active sites, MWCNT ensures superior electrical conductivity and COF provides a stable environment for electrocatalytic reactions as the shell. At the same time, regular pore structure of the COFs also offers smooth channels for the transfer of analytes to the catalytic site. The synergistic effect among the three components showed remarkable sensing performance for the simultaneous detection of guanine (G) and adenine (A) with a wide linear range of 0.6-180 μM and low limits of detection (LODs) of 0.020 μM for G and 0.024 μM for A (S/N = 3), respectively. The developed sensor platform was also successfully applied in the detection of purine bases in thermally denatured herring DNA extract. The work provided a general strategy for amplifying signal of COF and its composite in the electrochemical sensing.

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http://dx.doi.org/10.1016/j.jcis.2023.12.180DOI Listing

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