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Verified CAS / Academic Author3 Decoded Studies

Prof. XU Tongwen

University of Science and Technology of China

Research Publications & English Decoded Briefs

Showing 3 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3538-6

Reconfiguring hydration shells by rigidly confined interaction within graphene oxide membranes for ultra-efficient anion separation

The understanding of anion transporting behaviors under sub-nanoconfined regimes can guide the design of high-performance anion selective membranes (ASMs), yet it is little known. Here, we build membrane channels that combine physical rigidity with chemical affinity to anions simply through bridging graphene oxide nanosheets with charged linkers. We observe that the rigidly confined interaction imposed by channels to anions can reconfigure hydration shells in varying degrees for different anions via compensating for hydration-induced energy barriers and differentiating their rearrangement behaviors. During the configuration evolution, water molecules within hydration shells would rotate and simultaneously change their distance from the ion center. Based on the big discrepancy in configuration evolution, these membranes can realize ultrahigh selectivity of, for example, 125 for Cl−/SO4^2− and surpass the performance upper bound concerning Cl−/SO4^2− separation by other membranes. The knowledge of the configuration change of hydration shells during the dehydration process will be key to designing next-generation ASMs.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3797-2

Next-generation PBI-based ISMs: game changer of low-alkali water electrolysis

Water electrolysis is a promising method for producing green hydrogen from renewable energy sources. The mainstream membrane-based water electrolysis technologies include proton exchange membrane water electrolysis (PEMWE), alkaline water electrolysis (AWE), and anion exchange membrane water electrolysis (AEMWE). Each technology has inherent limitations: PEMWE requires expensive platinum group metal catalysts and fluorinated membranes; AWE uses porous diaphragms, limiting operational window and differential pressure capability; AEMWE suffers from quaternary ammonium group degradation under alkaline conditions. Ion-solvating membranes (ISMs), dense polymeric membranes with solvation sites that absorb aqueous alkaline electrolytes, offer an alternative. Most ISMs are based on polybenzimidazole (PBI), but achieving high efficiency at low alkali concentrations remains a bottleneck. Introducing sulfonic acid moieties into PBI enhances water and KOH uptake, improving conductivity, but alkali stability often requires crosslinking, which hampers scale-up. Henkensmeier et al. adapted sulfonated polybenzimidazole (SPBI) membranes originally for PEM fuel cells to ISMWE. By copolymerizing sulfonated and non-sulfonated monomers, they created a series of SPBI membranes with varying sulfonation degrees. The sulfonated segments boost electrolyte uptake and conductivity, while non-sulfonated units ensure alkali resistance and mechanical stability. Deprotonated benzimidazole rings increase electron density on ether carbons, enhancing stability in basic environments. The 50SOPBI-act membrane exhibited promising performance, with record ionic conductivity of 135 mS cm−1 at room temperature and 358 mS cm−1 at 80 °C in 1 M KOH, outperforming existing AEMWE and ISMWE systems.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3504-1

Enhanced OH− Conductivity and Alkaline Stability of Anion Exchange Membranes via Pyrene Stacking Backbone for Water Electrolysis

Anion exchange membrane water electrolyzers (AEMWEs) offer a cost-effective route for green hydrogen production by enabling non-precious metal catalysts and rapid start-stop operation. However, the trade-off between hydroxide conductivity and alkaline stability of anion exchange membranes (AEMs) remains a critical bottleneck. This study introduces a pyrene-based π-π stacking strategy to simultaneously enhance both properties. The synergistic π-stacking networks in the polymer backbone induce long-range cation aggregation through directed self-assembly, generating ionic cluster microdomains that elevate local hydroxide concentration and increase the density of accessible ion hopping sites. Additionally, the electron-donating effect of pyrene reduces the electrostatic potential of β-H adjacent to quaternary ammonium cations, raising the energy barrier for OH− nucleophilic attack. The resulting AEM exhibits exceptional performance: a hydroxide conductivity of 160 mS/cm and merely 0.35% conductivity degradation after 1950 h in 2 M KOH at 80 °C. The membrane electrode assembly (MEA) achieves a current density of 2.58 A/cm2 at 1.8 V and maintains stable operation for over 700 h in durability testing. These findings demonstrate a viable pathway for developing high-performance AEMs that meet the rigorous demands of industrial water electrolysis.