Insights into the mechanism of coreactant electrochemiluminescence facilitating enhanced bioanalytical performance

Alessandra Zanut(New York University), Andrea Fiorani(Keio University), Sofia Canola(University of Bologna), Toshiro Saito(Hitachi High-Tech (Japan)), Nicole Ziebart(Roche Pharma AG (Germany)), Stefania Rapino(University of Bologna), Sara Rebeccani(University of Bologna), Antonio Barbon(University of Padua), Takashi Irie(Hitachi High-Tech (Japan)), Hans‐Peter Josel(Roche Pharma AG (Germany)), Fabrizia Negri(University of Bologna), Massimo Marcaccio(University of Bologna), Michaela Windfuhr(Roche Pharma AG (Germany)), Kyoko Imai(Hitachi High-Tech (Japan)), Giovanni Valenti(University of Bologna), Francesco Paolucci(University of Bologna)
Nature Communications
May 29, 2020
Cited by 377Open Access
Full Text

Abstract

Electrochemiluminescence (ECL) is a powerful transduction technique with a leading role in the biosensing field due to its high sensitivity and low background signal. Although the intrinsic analytical strength of ECL depends critically on the overall efficiency of the mechanisms of its generation, studies aimed at enhancing the ECL signal have mostly focused on the investigation of materials, either luminophores or coreactants, while fundamental mechanistic studies are relatively scarce. Here, we discover an unexpected but highly efficient mechanistic path for ECL generation close to the electrode surface (signal enhancement, 128%) using an innovative combination of ECL imaging techniques and electrochemical mapping of radical generation. Our findings, which are also supported by quantum chemical calculations and spin trapping methods, led to the identification of a family of alternative branched amine coreactants, which raises the analytical strength of ECL well beyond that of present state-of-the-art immunoassays, thus creating potential ECL applications in ultrasensitive bioanalysis.


Related Papers

No related papers found

Powered by citation graph analysis