We
designed and synthesized iron doped CuSn(OH)6 (Fe/CuSn(OH)6) microspheres, which was selected as a nanoenzyme to detect
hydrogen peroxide (H2O2), by a coprecipitation
method for the first time. Significantly, Fe/CuSn(OH)6 microspheres
revealed the high peroxidase-like activity, which was evaluated using
the peroxidase substrate 3,3′,5,5′-tetramethylbenzidine
(TMB) catalytically oxidized by H2O2. Colorless
TMB could be turned into oxidized TMB (oxTMB) with a blue color change
in the process of oxidation. The catalytic reaction mechanism has
been proved to be •OH, attributing to H2O2 decomposition. On the basis of the high peroxidase
mimetic activity of Fe/CuSn(OH)6 microspheres, a novel,
simple, and sensitive H2O2 colorimetric detection
system was successfully constructed. Experimental data revealed that
the Fe/CuSn(OH)6 microspheres nanoenzyme additionally demonstrated
the high peroxidase-like activity compared with horseradish peroxidase.
Furthermore, based on the Fe/CuSn(OH)6, a rapid detection
of H2O2 could be come true in the wide range
(30–1000 μM) with a lower detection limit of 9.49 μM
(S/N = 3). The feasibility of this convenient method was confirmed
by qualitative detection of H2O2 residue in
milk.
A new multi-modal therapies agent FePt/BP-PEI-FA nanoplatform, loaded FePt nanoparticles (FePt NPs) onto ultrathin Black phosphorus nanosheets (BPNs), has been constructed to enhance synergistic Photothermal therapy (PTT), Photodynamic therapy (PDT),...
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