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Verified CAS / Academic Author2 Decoded Studies

Prof. Gang Lu

University of Pennsylvania

Research Publications & English Decoded Briefs

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SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3868-y

Ion Association in Nanoconfinement for Precision Separation

Selective ion transport in spatial confinement is central to environmental and energy sustainability, including desalination, energy conversion, and resource recovery. While biomimetic nanochannel membranes often rely on size exclusion or fixed ion-channel interactions, real-world separation systems involve multicomponent ionic mixtures where ion-ion interactions, such as dynamic pairing and competition, play a decisive yet underexplored role. Pan and coworkers address this gap by developing a functionalized membrane enabling dynamic manipulation of ion-ion interactions triggered by external ionic stimuli, achieving precise and reversible control over target ion transport. The membrane is constructed from aligned MXene nanosheets functionalized with γ-PGA through covalent and hydrogen bonding, establishing well-defined spatial confinements and adjacent amino and carboxyl groups that serve as anion-cation binding sites. This design enhances ion-pair formation, yielding ion selectivity and stimulus-responsive performance rivalling biological channels. Notably, when K+ and Mg2+ co-permeate, anions preferentially associate with K+ within the nanochannel, disrupting Mg2+ transport despite Mg2+'s higher affinity for channel walls. The MLM–γ-PGA membrane exhibits uniform channel architecture and remarkable aqueous stability. Ion transport characterization using a U-shaped diffusion cell with chloride salt solutions shows that with 0.2 M MgCl2 feed, Mg2+ permeation rate is 3.16 × 10−3 mol m−2 h−1. Introducing 0.2 M KCl suppresses Mg2+ permeation by two orders of magnitude to 3.2 × 10−5 mol m−2 h−1, with full reversibility over multiple cycles. This work highlights the potential of exploiting ion-ion interactions in nanoconfinement for precision separation.

Chinese Journal of Environmental Engineering2026DOI: 10.12030/j.cjee.202511041

Electron-Driven Processes for Sustained Dark Hydroxyl Radical Generation under Redox Fluctuations in Mangrove Soils

Hydroxyl radicals (·OH) generated via dark reactions under fluctuating redox conditions significantly influence pollutant degradation and elemental cycling, yet the key electron supply mechanisms driving their sustained production remain unclear. This study aimed to elucidate the electron-driven processes underlying sustained dark ·OH generation in mangrove soils under redox fluctuations. Simulated tidal redox cycles were conducted, and electron donating capacity (EDC), three-dimensional fluorescence spectroscopy, nuclear magnetic resonance, and high-throughput sequencing were employed to analyze the dynamics of different Fe(II) species, key organic matter components, and microbial communities. Results demonstrated that, without exogenous electron donors, mangrove soils exhibited stable ·OH generation potential and EDC. During early redox cycles, total EDC of soil suspensions was dominated by reactive Fe(II), while the contribution of reduced organic matter increased over time, with solid-phase components accounting for 94.5%–97.6% of total EDC. Humic acids in soil organic matter facilitated reversible electron transfer via quinone functional groups, maintaining redox activity. Geothermobacter and Desulfobulbus were identified as dominant iron-reducing bacteria, likely key microorganisms for regenerating the "iron-organic matter" electron sources. This study reveals the mechanisms of endogenous electron donor regeneration and sustained dark ·OH generation mediated by iron and organic matter cycling in mangrove soils, providing theoretical support for understanding the long-term environmental effects of ·OH in tidal environments and its impact on biogeochemical cycles.