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J Colloid Interface Sci ; 667: 450-459, 2024 Aug.
Article in English | MEDLINE | ID: mdl-38643742

ABSTRACT

Single-atom catalysts (SACs) have attracted extensive attention in the field of catalysis due to their excellent catalytic ability and enhanced atomic utilization, but the multi-mode single-atom nanozymes for biosensors remain a challenging issue. In this work, iron-doped carbon dots (Fe CDs) were loaded onto the edges and pores of Mo SACs with nanoflower morphology; accordingly, a composite material Fe CDs/Mo SACs was prepared successfully, which improves the catalytic performance and develops a fluorescence mode without changing the original morphology. The steady-state kinetic data indicates that the material prepared have better affinity for substrates and faster reaction rates under optimized conditions. The specific kinetic parameters Km and Vmax were calculated as 0.39 mM and 7.502×10-7 M·s-1 respectively. The excellent peroxidase-like activity of Fe CDs/Mo SACs allows H2O2 to decompose into •OH, which in turn oxidizes colorless o-phenylenediamine (OPD) to yellow 2,3-diaminophenazine (DAP). At the same time, the fluorescence signal of Fe CDs/Mo SACs quenches obviously by DAP at 460 nm through internal filtration effect (IFE), while the characteristic fluorescence response of DAP gradually increases at 590 nm. Based on this sensing mechanism, a sensitive and accurate dual-mode (colorimetric and ratiometric fluorescent) sensor was constructed to detect H2O2 and uric acid, and the rate of recovery and linearity were acceptable for the detection of UA in human serum and urine samples. This method provides a new strategy for rapid and sensitive detection of UA, and also broadens the development of SACs in the field of biosensors.


Subject(s)
Carbon , Hydrogen Peroxide , Iron , Molybdenum , Quantum Dots , Uric Acid , Uric Acid/analysis , Uric Acid/urine , Uric Acid/blood , Uric Acid/chemistry , Molybdenum/chemistry , Hydrogen Peroxide/analysis , Hydrogen Peroxide/chemistry , Carbon/chemistry , Iron/chemistry , Quantum Dots/chemistry , Catalysis , Humans , Biosensing Techniques , Limit of Detection , Particle Size , Nanostructures/chemistry , Surface Properties , Phenylenediamines/chemistry
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