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◆ Bioelectrochemistry (Amsterdam, Netherlands)2026-08-15

Laccase-mimicking Ag/MnO₂-polydopamine-borate as electrochemical platform for sensitive detection of caffeic acid.

Olha Demkiv, Nataliya Stasyuk, Marcin Holdynski, Wojciech Nogala, Mykhailo Gonchar

原始摘要(英文原文)· Original abstract
Caffeic acid (CA) is an important phenolic compound whose electrochemical oxidation is often limited by sluggish electron-transfer kinetics and electrode fouling, necessitating the development of efficient catalytic interfaces. Here, the electrocatalytic oxidation of CA at a laccase-mimicking Ag/MnO₂@polydopamine-borate (Ag/MnO₂@PDA-B)-modified electrode was investigated to evaluate its catalytic and sensing performance. The hybrid architecture, integrating conductive Ag-containing domains, redox-active MnO₂ centers, and a polydopamine-borate layer, promotes efficient oxidation of phenolic substrates. Cyclic voltammetry revealed a pronounced cathodic shift in the oxidation peak potential (210 mV) compared to that of a laccase-based biosensor, indicating reduced overpotential. The pH-dependent shift in peak potential is consistent with the involvement of proton-coupled electron transfer during CA oxidation. The nanozyme-modified electrode exhibited improved electrochemical stability and sustained catalytic activity. The sensor showed a linear response over 0.1-100 μM, with a detection limit of 22 nM and high sensitivity (37,900 A·M-1·m-2 in DPV and 23,580 A·M-1·m-2 in chronoamperometry). Overall, these results demonstrate the potential of Ag/MnO₂@PDA-B nanozymes as bioinspired electrocatalytic platforms for the sensitive detection of caffeic acid and related phenolic compounds.
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Laccase-mimicking Ag/MnO₂-polydopamine-borate as electrochemical platform for sensitive detection of caffeic acid. — 科研速览 Science Skim