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WY
Verified CAS / Academic Author2 Decoded Studies

Prof. WANG Yifan

Tiangong University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-026-4261-2

Breaking the Conductivity–Selectivity Trade-off in Nafion via Synergistic Molecular Modification for High-Performance Vanadium Redox Flow Batteries

Developing ion exchange membranes with both high proton conductivity and high selectivity is crucial for vanadium redox flow batteries (VRFBs). Commercial Nafion membranes suffer from severe vanadium crossover, while conventional additives often aggregate, disrupting ion domains and significantly reducing proton conductivity. To overcome this conductivity–selectivity trade-off, we propose a modification strategy based on molecular-level functional strategy. Two complementary additives, polyvinylpyrrolidone (PVP) and a fluoroalkyl-grafted polyoxometalate cluster (8FSiW11), are introduced into Nafion matrix to achieve precise, cooperative, regulation of ionic domains. PVP fills ion domains via hydrogen bonding and electrostatic interactions, constructing an efficient barrier against vanadium ions. Simultaneously, 8FSiW11 anchors at the hydrophilic/hydrophobic interface, providing additional proton sources and hopping sites to compensate for proton neutralization by PVP. The resulting hybrid membrane exhibits a proton/vanadium selectivity of 1×10^6 S min cm^-3, 8.6 times higher than commercial Nafion 212 (NR212), and enables VRFB energy efficiencies (EE) of 88.9% at 100 mA cm^-2 and 83.2% at 200 mA cm^-2. This work demonstrates the potential of synergistic molecular modification strategy to break conductivity–selectivity trade-off in membrane design for next-generation high-performance VRFBs.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3437-6

Sandwich-structured wettability foam for highly efficient, cost-effective, salt-resistant, and durable solar desalination

Interfacial solar-driven vapor generation offers a sustainable route to freshwater, yet practical deployment is constrained by salt crystallization, high material costs, and thermal losses. This work reports a sandwich wettability structure (PNMF) comprising a polypyrrole-coated hydrophobic top layer, a hydrophilic melamine foam interlayer, and a tunable hydrophobic bottom layer. The PPy coating absorbs broadband solar radiation and retains heat in situ; the hydrophilic interlayer supplies water through interconnected microporous channels, forming confined water clusters that reduce evaporation enthalpy. The bottom layer's central hydrophobicity regulates water transport to balance supply and evaporation, while its hydrophobic edges provide self-floatability and minimize heat loss. Under 1 sun, the PNMF evaporator achieves 2.71 kg m−2 h−1 with ~90% solar-thermal conversion efficiency over 24 cycles. In 10 wt% NaCl simulated seawater, no salt crystals formed after 12 h, and the evaporation rate remained stable at 2.62–2.87 kg m−2 h−1 over 20 days. Under natural autumn sunlight (average irradiation <0.4 kW m−2, temperatures <24 °C), a portable device produced approximately 3 kg m−2 over 11 h, with purified water salinity below 0.14‰. The simple, low-cost design addresses salt accumulation and durability bottlenecks, offering a scalable pathway for decentralized freshwater production.