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Scalability of nanopore osmotic energy conversion.
Tsutsui, Makusu; Hsu, Wei-Lun; Yokota, Kazumichi; Leong, Iat Wai; Daiguji, Hirofumi; Kawai, Tomoji.
Afiliação
  • Tsutsui M; The Institute of Scientific and Industrial Research Osaka University Ibaraki Osaka Japan.
  • Hsu WL; Department of Mechanical Engineering The University of Tokyo Bunkyo-ku Tokyo Japan.
  • Yokota K; Health and Medical Research Institute National Institute of Advanced Industrial Science and Technology (AIST) Takamatsu Kagawa Japan.
  • Leong IW; The Institute of Scientific and Industrial Research Osaka University Ibaraki Osaka Japan.
  • Daiguji H; Department of Mechanical Engineering The University of Tokyo Bunkyo-ku Tokyo Japan.
  • Kawai T; The Institute of Scientific and Industrial Research Osaka University Ibaraki Osaka Japan.
Exploration (Beijing) ; 4(2): 20220110, 2024 Apr.
Article em En | MEDLINE | ID: mdl-38855615
ABSTRACT
Artificial nanofluidic networks are emerging systems for blue energy conversion that leverages surface charge-derived permselectivity to induce voltage from diffusive ion transport under salinity difference. Here the pivotal significance of electrostatic inter-channel couplings in multi-nanopore membranes, which impose constraints on porosity and subsequently influence the generation of large osmotic power outputs, is illustrated. Constructive interference is observed between two 20 nm nanopores of 30 nm spacing that renders enhanced permselectivity to osmotic power output via the recovered electroneutrality. On contrary, the interference is revealed as destructive in two-dimensional arrays causing significant deteriorations of the ion selectivity even for the nanopores sparsely distributed at an order of magnitude larger spacing than the Dukhin length. Most importantly, a scaling law is provided for deducing the maximal membrane area and porosity to avoid the selectivity loss via the inter-pore electrostatic coupling. As the electric crosstalk is inevitable in any fluidic network, the present findings can be a useful guide to design nanoporous membranes for scalable osmotic power generations.
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Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article