“…Next, the defect-rich active edges of our efficient nanozymes motivated us to evaluate their catalytic performance.A s shown in Figure 3a,a ll the adhesive nanozymes with defectrich active edges exhibited higher peroxidase-like activity than pristine MoS 2 .T heir catalytic mechanism was explored by fluorescent experiments and density functional theory (DFT) calculations.E mploying terephthalic acid (TA) as atracking probe,wefound that the peroxidase-like activity of MoS 2 -based nanozymes was derived from their ability to convert H 2 O 2 into COH radicals (Supporting Information, Figure S13), which was in accordance with previous studies. [4,8,10,11] Further, we built three typical models of MoS 2 (pristine MoS 2 ,S-defect MoS 2 ,and MoS 2 with Mo and Sedge) to explore the H 2 O 2 activation process (adsorption-homolysis-desorption), shown in Figure S14 in the Supporting Information. Figure 3c and Figures S15-20 in the Supporting Information showed the optimized structures of important intermediates during the H 2 O 2 -decomposition process as well as the adsorption energies.I tw as clearly seen that the H 2 O 2 molecule was stably adsorbed on MoS 2 ,onS-defect MoS 2 ,and on the edge of MoS 2 with adsorption energies of À0.14, À0.32, and À0.47 eV,r espectively.F urthermore,a ll intermediates have negative adsorption energies,s uggesting as table adsorption.…”