Dual-signal amplification electrochemical sensing for the sensitive detection of uranyl ion based on gold nanoparticles and hybridization chain reaction-assisted synthesis of silver nanoclusters

Herein, a dual-signal amplification electrochemical sensing has been proposed for the ultrasensitive detection of uranyl ions (UO22+) by integration of gold nanoparticles (AuNPs) and hybridization chain reaction (HCR)-assisted synthesis of silver nanoclusters (AgNCs). In this sensing platform, AuNPs...

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Veröffentlicht in:Analytica chimica acta 2021-11, Vol.1184, p.338986-338986, Article 338986
Hauptverfasser: Chen, Lei, Liu, Jinquan, Cao, Chen, Tang, Shuangyang, Lv, Changyin, Xiao, Xilin, Yang, Shengyuan, Liu, Ling, Sun, Lin, Zhu, Bingyu, Li, Le
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Sprache:eng
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Zusammenfassung:Herein, a dual-signal amplification electrochemical sensing has been proposed for the ultrasensitive detection of uranyl ions (UO22+) by integration of gold nanoparticles (AuNPs) and hybridization chain reaction (HCR)-assisted synthesis of silver nanoclusters (AgNCs). In this sensing platform, AuNPs are used as an ideal signal amplification carrier, aiming at increasing the loads of UO22+-specific DNAzyme on the gold electrode. In the presence of UO22+, UO22+-specific DNAzyme can be activated, leading to the cleavage of substrate strands (S-DNA). Then, HCR is triggered to produce long dsDNA through hybridization the probe with the ssDNA on the electrode surface. As a result, an amplified electrochemical response can be detected by inserting a large amount of AgNCs generated in situ using dsDNA as template. Featured with amplification efficiency, good specificity and high sensitivity, the strategy could quantitatively detect UO22+ down to 6.2 pM with a linear calibration range from 20 pM to 5000 pM. The proposed sensing platform has been also successfully demonstrated the practical application of detecting UO22+, indicating that the developed method has the potential applications and can open up a new avenue for highly sensitive detection of UO22+ in environmental monitoring. [Display omitted] •A dual-signal amplification electrochemical sensing platform was developed for detecting UO22+.•AuNPs and HCR-assisted synthesis of AgNCs were used for signal amplification.•Highly sensitive detection of UO22+ in actual water samples was achieved.
ISSN:0003-2670
1873-4324
DOI:10.1016/j.aca.2021.338986