Template-confined cobalt single-atom catalyst for biointerface applications: An ultrasensitive electrochemical biosensor for hydrogen peroxide from food safety to live cancer cells monitoring.
Zhichao Ma, Yiran Wang, Yanxin Qin, Qikun Yin, Ming Wei, Wenbo Lu
Colloids and surfaces. B, Biointerfaces
Abstract
The development of a quantitative electrochemical method for H2O2 detection is crucial as it enables the real-time assessment of both bleaching agent residues in food and oxidative stress in cancer cells. The single-atom Co catalyst Co SAs@ZIF-NC was prepared using a bimetallic ZIF-8-67 precursor via a template-confined synthesis strategy. Successful synthesis was confirmed through comprehensive characterization of its structure and morphology using X-ray diffraction, scanning electron microscopy, transmission electron microscopy, X-ray photoelectron spectroscopy, Brunauer-Emmett-Teller method, and X-ray absorption near edge structure. The as-synthesized Co SAs@ZIF-NC was immobilized on the surface of a pencil-lead graphite electrode, enabling the electrochemical detection of H2O2. The H2O2 sensor showed excellent analytical performance for H2O2 detection, with a linear range of 1-12000 μM, a detection limit of 0.21 μM, and a sensitivity of 2395.54 μA·mM-1·cm-2 (S/N = 3), alongside reliable selectivity, stability, and reproducibility. It was successfully applied to determine H2O2 residues in food and monitor extracellular H2O2 levels in A549 cells. Therefore, this paper proposes a novel material design strategy for single-atom catalysts for electrochemical H2O2 sensing.