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Self-restoration of reactive centers via contaminant-to-catalyst electron replenishment for sustained Fenton-like activity

The challenge of achieving self-driven restoration of catalytic sites without external energy or chemical input is critical, which can extend the service life of the catalyst and efficiently reduce water treatment costs.

By Li, Chen, Hu +4Nature Communications

Score████░░░░░░4.3

Key numbers

  • 15 days in a continuous-flow

VerdictWorth a reader's time today.

Read the original

Abstract

The challenge of achieving self-driven restoration of catalytic sites without external energy or chemical input is critical, which can extend the service life of the catalyst and efficiently reduce water treatment costs. Herein, we fabricate high-spin Mo2+ doped FeS2 catalysts to realize efficient peroxymonosulfate (PMS) activation and contaminant degradation. Notably, doped high-spin Mo2+ can spontaneously enrich contaminants and extract electrons from electron-rich contaminants owing to the active 4 d orbital, which replenishes electrons consumed by high-spin Fe during PMS activation. This “contaminant-to-catalyst” electron replenishment pathway, driven primarily by high-spin Mo2+ and synergistically assisted by lattice S, accomplishes the sustainable restoration of reactive centers. Consequently, ~800 mg of 0.39 wt% Mo-FeS2 maintains high activity for over 15 days in a continuous-flow reactor, which treats 216 L of bisphenol A-containing wastewater, surpassing most of reported Fenton-like systems. Ab initio molecular dynamics simulations reveal the interfacial radical oxidation mediated by proton-coupled electron transfer, reducing the migration of radicals and enhancing the mineralization of contaminants. Furthermore, we establish a scalable synthesis for producing kilogram-scale catalyst, immobilizing onto sponges for realizing the selective elimination of trace emerging contaminants from four types of municipal wastewater. Overall, this work provides a promising strategy for developing durable Fenton-like catalysts. In this study, high-spin Mo2+ species in FeS2 mediate a “contaminant-to-catalyst” electron replenishment pathway to enable active-site restoration, allowing contaminants to function beyond their conventional role as degradation targets.

Yu‐Hang Li, Anjie Chen, Xiaoyi Hu, Mingyi Liu, Nan Xu, Alistair G.L. Borthwick, Haodong Ji

The editor's rubric

Heuristic review

DimensionLevelWeightWhat that level means
Leverage███░░ 316%A method or resource many groups across the field will adopt within a year.
Magnitude███░░ 320%Large gain: roughly 2x, or a clear new state of the art on a hard, unsaturated problem.
Evidence███░░ 320%Solid: multiple benchmarks or cohorts, ablations, fair baselines, released code or data.
Novelty██░░░ 210%A new combination of known ideas.
Trajectory███░░ 314%A clear path to scale.
Stakes██░░░ 220%Benefits a professional community (practitioners, clinicians, engineers).

Editor’s rationale

Heuristic triage from title and abstract text only, not a reading of the paper. Cues found: method (we report); gains (outperforms); scale (scalable, efficient, improves with scale); stakes (energy).

How the score was computed

rank-2026-09-29

Score████░░░░░░4.3

Score = 10 × (75% × adjusted merit / 10 + 15% × attention + 10% × freshness)

Merit
5.4 / 10
Weighted rubric, evidence-gated.
Adjusted merit
4.6 / 10
Shrunk toward the desk prior by editor confidence (42%).
Attention
0%
Citations, upvotes, points, mentions.
Freshness
85%
Half-life decay since publication.
  • Citations0 (reference 15, via openalex, Oct 5, 2026, 07:29 UTC)
  • Field-weighted citation impact0 (reference 3, via openalex, Oct 5, 2026, 07:29 UTC)

The record

  • Reviewed by heuristic-v2 on Oct 5, 2026, 07:29 UTC. Paper type: method.
  • Categories: Advanced oxidation water treatment, Advanced Photocatalysis Techniques, Advanced battery technologies research, Water Science and Technology, Environmental Science
  • BRIEF, No.6 in the Climate & Energy edition of October 5, 2026.