AI Article Synopsis

  • Efficient conduction of hydroxide ions (OH) in anion exchange membranes (AEMs) is crucial for improving sustainable technologies like water electrolysis and fuel cells.
  • Researchers developed innovative AEMs with rigid, heteroatom-free micropores engineered for fast and stable ionic transport, resulting in a significant increase in conductivity and durability.
  • These new membranes not only improve energy efficiency and lifespan, but also allow for the use of less expensive catalysts, making them promising for future advancements in electrochemical applications.

Article Abstract

Efficient OH conduction in anion exchange membranes (AEMs) is pivotal for the advancement and industrialization of sustainable electrochemical technologies in alkaline environments, including water electrolysis, fuel cells, and CO electroreduction. We here designed AEMs with a novel class of rigid heteroatom-free micropores (HFMs), engineered at the molecular level to facilitate rapid ionic transport in an ultra-stable manner. By manipulating monomers, our design strategically controls the torsional angles and energy barriers within the polymeric backbones, creating sub-nanometer ionic channels that precisely regulate porosity. These hydrophilic micropores significantly enhance the mobility of OH/HO, achieving over a 150 % increase in self-diffusion coefficient compared to commercial AEMs and elevating OH conductivity to a leading 215 mS cm at 80 °C. Moreover, the robust carbon-carbon bond construction in HFMs offers the stability that is four orders of magnitude higher under severe alkaline conditions compared to existing wisdoms, with a demonstrated operational lifespan of over 4000 hours. The integration of HFM-AEMs into water electrolyzers not only supports the use of platinum group metal-free catalysts but also exhibits exceptional energy efficiency and extended durability, highlighting their substantial potential for wide-ranging applications in emerging electrochemical technologies.

Download full-text PDF

Source
http://dx.doi.org/10.1002/anie.202418435DOI Listing

Publication Analysis

Top Keywords

anion exchange
8
exchange membranes
8
heteroatom-free micropores
8
electrochemical technologies
8
facilitating rapid
4
rapid oh/ho
4
oh/ho transport
4
transport anion
4
membranes ultra-stable
4
ultra-stable heteroatom-free
4

Similar Publications

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!