Microfluidic paper-based chip for parathion-methyl detection based on a double catalytic amplification strategy
The rapid detection of insecticides such as parathion-methyl (PM) requires methods with high sensitivities and selectivities. Herein, a dual catalytic amplification strategy was developed using Fe 3 O 4 nanozyme-supported carbon quantum dots and silver terephthalate metal–organic frameworks (Fe 3 O...
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Veröffentlicht in: | Mikrochimica acta (1966) 2021-12, Vol.188 (12), p.438-438, Article 438 |
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Sprache: | eng |
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Zusammenfassung: | The rapid detection of insecticides such as parathion-methyl (PM) requires methods with high sensitivities and selectivities. Herein, a dual catalytic amplification strategy was developed using Fe
3
O
4
nanozyme-supported carbon quantum dots and silver terephthalate metal–organic frameworks (Fe
3
O
4
/C-dots@Ag-MOFs) as current amplification elements. Based on this strategy, a novel electrochemical microfluidic paper-based chip was designed to detect PM. Fe
3
O
4
/C-dots@Ag-MOFs were synthesised by a hydrothermal method, and a molecularly imprinted polymer (MIP) was then synthesised on the surface of Fe
3
O
4
/C-dots@Ag-MOFs using PM as a template molecule. Finally, the reaction zone of a chip was modified with MIP/Fe
3
O
4
/C-dots@Ag-MOFs. PM from a sample introduced into the reaction zone was captured by the MIP, which generated a reduction current response at − 0.53 V in a three-electrode system embedded in the chip. Simultaneous catalysis by Fe
3
O
4
/C-dots and Ag-MOFs significantly enhanced the signal. The chip had a detection limit of 1.16 × 10
−11
mol L
−1
and was successfully applied to the determination of PM in agricultural products and environmental samples with recovery rates ranging from 82.7 to 109%, with a relative standard deviation (RSD) of less than 5.0%. This approach of combining a dual catalytic amplification strategy with an MIP significantly increased the sensitivity as well as selectivity of chips and can potentially be used to detect a wide variety of target analytes using microfluidic paper-based chips.
Graphical abstract |
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ISSN: | 0026-3672 1436-5073 |
DOI: | 10.1007/s00604-021-05084-6 |