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May 17, 2026Science Advances2 citationsOpen Access

Proton-shuttling nanosheet membranes enable high-power-density protonic fuel cells

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KHKaiqiang HeYWYuxiang WangDDDehua Dong

Key Points

  • This study aims to develop a novel nanosheet membrane to improve proton conductivity and power density in fuel cells under high-temperature conditions.
  • Constructed nanosheet membranes using nanoconfined phosphoric acid to bridge individual sheets.
  • Evaluated proton conductivity and power density at 250°C and in methanol environments.
  • Achieved proton conductivity of 166 millisiemens per centimeter and a power density of 1011 milliwatts per square centimeter at 250°C.
  • Demonstrated superior methanol tolerance, achieving 502 milliwatts per square centimeter on concentrated methanol.

Abstract

High-temperature operation enhances the efficiency and design simplicity of electrochemical devices, but conventional polymer membranes lose proton conductivity rapidly due to dehydration. Atomically thin nanosheets can selectively transport thermal protons through nanoscale corrugations and quantum tunneling, making them promising for high-temperature proton-conducting membranes. However, stacked nanosheet assemblies often suffer from poor proton transport between layers. We built nanosheet-based membranes by bridging individual nanosheets using nanoconfined phosphoric acid. This architecture enables low-tortuosity, synergistic proton transport via both through-nanosheet conduction and hydrogen bond–mediated hopping along confined acid layers, resulting in ultrafast, stable proton conduction under anhydrous high-temperature conditions. A polyethylenimine-functionalized graphene/boron nitride bilayer membrane achieves a proton conductivity of 166 millisiemens per centimeter and delivers a power density of 1011 milliwatts per square centimeter in hydrogen fuel cells at 250°C, outperforming most previously reported anhydrous proton-conducting membranes. Furthermore, it exhibits superior methanol tolerance, achieving 502 milliwatts per square centimeter on concentrated methanol. This work offers a versatile platform for next-generation high-temperature proton-conducting membranes.

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Cite This Study

He et al. (2026) studied this question.

synapsesocial.com/papers/6a095b1b7880e6d24efe0d46https://doi.org/10.1126/sciadv.aea1569
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