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Silver Ions as Novel Coreaction Accelerator for Remarkably Enhanced Electrochemiluminescence in a PTCA-S2O82- System and Its Application in an Ultrasensitive Assay for Mercury Ions.
Lei, Yan-Mei; Wen, Rui-Xin; Zhou, Jia; Chai, Ya-Qin; Yuan, Ruo; Zhuo, Ying.
Affiliation
  • Lei YM; Key Laboratory of Luminescent and Real-Time Analytical Chemistry, Ministry of Education, College of Chemistry and Chemical Engineering , Southwest University , Chongqing 400715 , China.
  • Wen RX; Key Laboratory of Luminescent and Real-Time Analytical Chemistry, Ministry of Education, College of Chemistry and Chemical Engineering , Southwest University , Chongqing 400715 , China.
  • Zhou J; Key Laboratory of Luminescent and Real-Time Analytical Chemistry, Ministry of Education, College of Chemistry and Chemical Engineering , Southwest University , Chongqing 400715 , China.
  • Chai YQ; Key Laboratory of Luminescent and Real-Time Analytical Chemistry, Ministry of Education, College of Chemistry and Chemical Engineering , Southwest University , Chongqing 400715 , China.
  • Yuan R; Key Laboratory of Luminescent and Real-Time Analytical Chemistry, Ministry of Education, College of Chemistry and Chemical Engineering , Southwest University , Chongqing 400715 , China.
  • Zhuo Y; Key Laboratory of Luminescent and Real-Time Analytical Chemistry, Ministry of Education, College of Chemistry and Chemical Engineering , Southwest University , Chongqing 400715 , China.
Anal Chem ; 90(11): 6851-6858, 2018 06 05.
Article in En | MEDLINE | ID: mdl-29667404
In this work, with the use of Ag(I) ion as robust coreaction accelerator for the enhancement of 3,4,9,10-perylenetetracarboxylic acid-peroxydisulfate (PTCA-S2O82-) system, a highly sensitive solid-state electrochemiluminescence (ECL)-biosensing platform was successfully designed for the detection of mercury ions (Hg2+). Specifically, a long guanine-rich (C-rich) double-stranded DNA (dsDNA) was generated by the target-Hg2+-controlled DNA machine that could amplify the ECL signal of the PTCA-S2O82- system by embedding the Ag(I) ion. Herein, the Ag(I) ion, as a coreaction accelerator, could first react with S2O82- to produce Ag(II) ion and a sulfate radical anion (SO4·-). Then, the accompanying Ag(II) ion could react with H2O to generate the reactive intermediate species (i.e., hydroxyl radical (OH·)), which could further accelerate the reduction of S2O82- to output more SO4·-. Moreover, the recycling of the Ag(I) ion and Ag(II) ion was easily achieved by the electrochemical reaction. Therefore, an avalanche-type reaction was triggered to generate massive amounts of SO4·-, which could react with the luminophore (PTCA) to achieve an extremely strong ECL signal. The ECL mechanism was investigated by ECL and cycle voltammetry (CV) and by the analysis of the fluorescence (FL), ECL, and electron-paramagnetic-resonance (EPR) spectra. As a result, the proposed solid-state ECL-biosensing platform for Hg2+ detection exhibited high sensitivity, with a linear range from 1 × 10-15 to 1 × 10-10 M and a detection limit of 3.3 × 10-16 M. Importantly, this work was the first to utilize a metal ion as a coreaction accelerator and provided a promising approach to improve the sensitivity of target analyses in ECL-biosensing fields.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Perylene / Silver / Sulfates / Luminescence / Electrochemical Techniques / Mercury Language: En Journal: Anal Chem Year: 2018 Document type: Article Affiliation country: China Country of publication: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Perylene / Silver / Sulfates / Luminescence / Electrochemical Techniques / Mercury Language: En Journal: Anal Chem Year: 2018 Document type: Article Affiliation country: China Country of publication: Estados Unidos