Monolayer Hexagonal Boron Nitride Nanosheets as Proton-Conductive Gas Barriers for Polymer Electrolyte Membrane Water Electrolysis
Монослойные нанолисты гексагонального нитрида бора как протонопроводящие газовые барьеры для электролиза воды в полимерно-электролитной мембране
2021-09-15
SCID: 54.1/36e3rbn8
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PEM water electrolysishBN/Nafion composite membranehydrogen permeabilitymonolayer hexagonal boron nitrideproton-conductive gas barriers
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Abstract (AI)
In a proton exchange membrane (PEM) water electrolyzer, the poor gas barrier property of conventional perfluorosulfonic acid (PFSA) membranes results in membrane degradation and safety-related explosion issues. In this report, we investigate the potential of monolayer hexagonal boron nitride (hBN) as an effective hydrogen gas barrier for PEMs in a water electrolyzer. An hBN/Nafion composite membrane is prepared by transferring large-area monolayer hBN (∼25 cm 2 ), which is prepared using chemical vapor deposition, onto Nafion 117. This one-atom-thick monolayer hBN, which is known as an impermeable material to most molecules except protons, significantly enhances the hydrogen barrier property of Nafion 117, even at high temperatures, and increases the mechanical stability of the membrane. Although a trade-off between proton conductivity and hydrogen barrier properties is observed, the water electrolysis efficiency of the cell containing the composite membrane is improved by increasing the operating temperature while minimizing the decrease in proton conductivity. By employing monolayer hBN, hydrogen permeability is significantly reduced by approximately 40%, and the corresponding electrolysis efficiency decreases by 19% compared to that of pristine Nafion. Furthermore, the enhanced gas barrier property of the composite shows slightly higher long-term (100 h) stability than that of Nafion 117.
Key Findings
1
A large-area (~25 cm²) monolayer hBN sheet was transferred onto Nafion 117 to create a proton-conductive composite membrane for PEM electrolysis.
2
A trade-off exists between proton conductivity and hydrogen impermeability, but higher operating temperatures improve electrolysis efficiency while limiting conductivity losses.
3
The composite membrane demonstrates slightly better long-term stability over 100 hours than Nafion 117.
4
The hBN composite reduces hydrogen permeability by approximately 40%, while electrolysis efficiency is 19% lower than with pristine Nafion.
5
The one-atom-thick hBN layer substantially improves Nafion’s hydrogen barrier performance at high temperatures and enhances membrane mechanical stability.
Research Object
monolayer hexagonal boron nitride (hBN)/Nafion composite membranes for PEM water electrolysis
Research Subject
the trade-off among proton conductivity, hydrogen permeability, mechanical stability, electrolysis efficiency, and long-term stability of the composite membranes
Publication Details
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2021-09-15
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