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Asymmetric Fe atom-cluster tandem sites were rationally engineered in N−C substrates by precisely manipulating metal dispersion states. This design achieves unprecedented Fenton-like activity, with turnover frequencies 3 to 66 times higher than those of conventional single-atom catalysts. Beyond inter-site electronic modulation, the stereochemical complementarity between the asymmetric peroxymonosulfate (PMS) molecule and the tandem sites unlocks distinctive geometric synergy. This synergy induces a bidentate coordination mode (Fe−O−O−Fe) that elongates the O−O bond to 1.65 Å, synergistically facilitating deep PMS activation. Theoretical calculations and in situ spectroscopic characterizations validated that this configuration bypasses homolytic O−O cleavage, instead generating surface-activated PMS* species that mediate fast interfacial electron transfer rather than inefficient homogeneous aqueous oxidation. Frontier orbital theory demonstrates that such reactant-tailored interfacial process significantly narrows the molecular orbital gap (Δ E MO = 1.47 eV), facilitating targeted organic removal and accelerating key oxidation kinetics. The intensified inter-site interactions confer exceptional resistance to demetalation, enabling long-term stability (>100 h) for device-level water purification. This work redefines cooperative catalysis principles in multi-center catalysts and opens avenues for precise Fenton-like chemistry in advanced water treatment. • Engineered Fe atom-cluster tandem achieves geometric complementarity with reactants. • Reaction pathway is redirected from ROS oxidation to interfacial electron transfer. • Bidentate coordination induces deep PMS activation, enhancing activity and stability. • The dual-regulation system enables simultaneous decontamination and disinfection.
Wu et al. (Tue,) studied this question.