4.8 Article

Cation-Selective Oxide Semiconductor Mesoporous Membranes for Biomimetic Ion Rectification and Light-Powered Ion Pumping

Journal

SMALL
Volume 18, Issue 35, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/smll.202202910

Keywords

ion rectification; ion pumping; light; mesopores; oxide semiconductors

Funding

  1. National Key Research and development Program of China [2017YFA0206902, 2017YFA0206900]
  2. National Natural Science Foundation of China [21975011]
  3. Aeronautical Science Foundation of China [2019ZD051012]
  4. Fundamental Research Funds for the Central Universities [YWF-21-BJ-J-416]

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Inspired by the cyclic ion transport in purple bacteria, researchers have developed a bilayer inorganic membrane that mimics the functions of ion channels and ion pumps. This membrane allows for ion rectification and light-powered ion pumping, and its asymmetric charge distribution and built-in electric field enable control of ion transport direction and concentration.
Artificial membranes precisely imitating the biological functions of ion channels and ion pumps have attracted significant attention to explore nanofluidic energy conversion. Herein, inspired by the cyclic ion transport for the photosynthesis in purple bacteria, a bilayer inorganic membrane (TiO2/AAO) composed of oxide semiconductor (TiO2) mesopores on anodic alumina (AAO) macropores is we developed. This inorganic membrane achieves the functions of ion channels and ion pumps, including the ion rectification and light-powered ion pumping. The asymmetric charge distribution across the bilayer membrane contributes to the cationic selectivity and ion rectification characteristics. The electrons induced by ultraviolet irradiation introduce a built-in electric field across TiO2/AAO membrane, which pumps the active ion transport from a low to a high concentration. This work integrates the functions of biological ion channels and ion pumps within an artificial membrane for the first time, which paves the way to explore multifunctional membranes analogous to its biological counterpart.

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