AI Article Synopsis

  • Manipulating ion flow across membranes is crucial for applications like water desalination, blood ion monitoring, and energy storage.
  • The study explores using daily humidity changes as a driving force for generating selective ion flux through specialized membranes made of polycation clusters and ionic liquids.
  • The device exhibits spontaneous ion current generation due to varying moisture levels, with enhanced anion transport and inhibited cation flow, highlighting humidity as a potential energy source for electrical current conversion.

Article Abstract

The ability to manipulate the flux of ions across membranes is a key aspect of diverse sectors including water desalination, blood ion monitoring, purification, electrochemical energy conversion and storage. Here we illustrate the potential of using daily changes in environmental humidity as a continuous driving force for generating selective ion flux. Specifically, self-assembled membranes featuring channels composed of polycation clusters are sandwiched between two layers of ionic liquids. One ionic liquid layer is kept isolated from the ambient air, whereas the other is exposed directly to the environment. When in contact with ambient air, the device showcases its capacity to spontaneously produce ion current, with promising power density. This result stems from the moisture content difference of ionic liquid layers across the membrane caused by the ongoing process of moisture absorption/desorption, which instigates selective transmembrane ion flux. Cation flux across the polycation clusters is greatly inhibited because of intensified charge repulsion. However, anions transport across polycation clusters is amplified. Our research underscores the potential of daily cycling humidity as a reliable energy source to trigger ion current and convert it into electrical current.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11339353PMC
http://dx.doi.org/10.1038/s41467-024-51505-4DOI Listing

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