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Updated: Jan 20, 2026

Directed Protein Packaging within Outer Membrane Vesicles from Escherichia coli: Design, Production and Purification
Published on: November 16, 2016
Dynamic inner-outer dual-cycles drive selective periodate activation for nearly exclusive singlet oxygen production
Yu Liu1, Rongwei Li1, Lanxuan Wen1
1Yanshan Earth Critical Zone and Surface Fluxes Research Station, College of Resources and Environment, University of Chinese Academy of Sciences, Beijing, 100049, China.
Abstract:
Selective singlet oxygen (1O2) generation via periodate (PI) activation is constrained by radical-mediated competition and insufficient endogenous electron supply at metal centers. Herein, we report a spatially partitioned inner-outer dual-cycle catalytic system, consisting of nitrogen-doped carbon-confined zero-valent cobalt core encapsulated by a MnO2 shell (Co/NC/MnO2), which achieves 95.93% 1O2 selectivity. The MnO2 shell orchestrates electron redistribution to drive heterolytic I-O cleavage and OO release, effectively suppressing radical pathways without undergoing significant valency change. Simultaneously, the Co° core acts as an embedded electron donor, continuously supplying electrons through the NC interlayer to sustain concurrent Co/Mn redox cycling. This dynamic synergistic coupling drastically accelerates interfacial kinetics, enabling 100% removal of diverse electron-rich contaminants within 10 min. Furthermore, the system demonstrates outstanding operational stability over 192 h in a continuous-flow reaction, while life cycle assessment (LCA) confirms its low environmental footprint. This work introduces a new architectural paradigm for selective 1O2 production via the inner-outer cycle concept and inspires advanced synergistic dual-site engineering for sustainable water purification.
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