Abstract
Precisely defining proton transport channels and regulating the chemical microenvironment of proton carriers are critical for high-performance proton exchange membranes (PEMs). Beyond optimizing carrier type and density, modulation of electron density distribution offers an underexplored route to enhance intrinsic proton conductivity. Herein, a series of ZnM-BDC-COOH nanosheets are synthesized by partial substitution of Zn2+ with a second metal ion in Zn-BDC frameworks and subsequent −COOH modification. The optimized ZnCu-BDC-COOH achieves a high intrinsic proton conductivity of 361.5 mS cm–1 over 16 times that of the pristine Zn-BDC (22.2 mS cm–1) at 80 °C and 98% RH using comb electrodes. Density functional theory and molecular dynamics simulations reveal that the introduced Cu2+, with higher electronegativity, withdraws more electrons from adjacent −COOH groups and Zn ions, generating asymmetric electron cloud distribution within the O–H bonds and the heterogeneous Zn3CuO(COO)6 nodes. This electron asymmetry facilitates rapid H+ release and establishes a strong local potential gradient that lowers the proton transport barrier. The resulting ZnCu-BDC-COOH lamellar membrane achieves a peak power density of 0.92 W cm–2, outperforming Nafion-117 (0.28 W cm–2), and maintains good durability over 100 h of open-circuit voltage (OCV) under 80 °C and 100% RH in fuel cells.
| Original language | English |
|---|---|
| Pages (from-to) | 17750-17760 |
| Number of pages | 11 |
| Journal | ACS Nano |
| Volume | 20 |
| Issue number | 24 |
| DOIs | |
| Publication status | Published - 23 Jun 2026 |
Keywords
- Asymmetric electron distribution
- Fuel cells
- Metal-node regulation
- Metal−organic frameworks
- Proton conduction
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