Literature DB >> 27300979

Analysis of electrolyte transport through charged nanopores.

P B Peters1,2, R van Roij1, M Z Bazant3,4, P M Biesheuvel5,6.   

Abstract

We revisit the classical problem of flow of electrolyte solutions through charged capillary nanopores or nanotubes as described by the capillary pore model (also called "space charge" theory). This theory assumes very long and thin pores and uses a one-dimensional flux-force formalism which relates fluxes (electrical current, salt flux, and fluid velocity) and driving forces (difference in electric potential, salt concentration, and pressure). We analyze the general case with overlapping electric double layers in the pore and a nonzero axial salt concentration gradient. The 3×3 matrix relating these quantities exhibits Onsager symmetry and we report a significant new simplification for the diagonal element relating axial salt flux to the gradient in chemical potential. We prove that Onsager symmetry is preserved under changes of variables, which we illustrate by transformation to a different flux-force matrix given by Gross and Osterle [J. Chem. Phys. 49, 228 (1968)JCPSA60021-960610.1063/1.1669814]. The capillary pore model is well suited to describe the nonlinear response of charged membranes or nanofluidic devices for electrokinetic energy conversion and water desalination, as long as the transverse ion profiles remain in local quasiequilibrium. As an example, we evaluate electrical power production from a salt concentration difference by reverse electrodialysis, using an efficiency versus power diagram. We show that since the capillary pore model allows for axial gradients in salt concentration, partial loops in current, salt flux, or fluid flow can develop in the pore. Predictions for macroscopic transport properties using a reduced model, where the potential and concentration are assumed to be invariant with radial coordinate ("uniform potential" or "fine capillary pore" model), are close to results of the full model.

Entities:  

Year:  2016        PMID: 27300979     DOI: 10.1103/PhysRevE.93.053108

Source DB:  PubMed          Journal:  Phys Rev E        ISSN: 2470-0045            Impact factor:   2.529


  13 in total

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Review 3.  Electrochemical Methods for Water Purification, Ion Separations, and Energy Conversion.

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4.  Streaming current magnetic fields in a charged nanopore.

Authors:  Abraham Mansouri; Peyman Taheri; Larry W Kostiuk
Journal:  Sci Rep       Date:  2016-11-11       Impact factor: 4.379

Review 5.  Towards Electrochemical Water Desalination Techniques: A Review on Capacitive Deionization, Membrane Capacitive Deionization and Flow Capacitive Deionization.

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Journal:  Membranes (Basel)       Date:  2020-05-12

6.  Osmotic Pressure and Diffusion of Ions in Charged Nanopores.

Authors:  P Apel; M Bondarenko; Yu Yamauchi; A Yaroshchuk
Journal:  Langmuir       Date:  2021-11-25       Impact factor: 3.882

7.  Nonlinear electrohydrodynamic ion transport in graphene nanopores.

Authors:  Xiaowei Jiang; Chunxiao Zhao; Yechan Noh; Yang Xu; Yuang Chen; Fanfan Chen; Laipeng Ma; Wencai Ren; Narayana R Aluru; Jiandong Feng
Journal:  Sci Adv       Date:  2022-01-14       Impact factor: 14.136

8.  Insights into the estimation of capacitance for carbon-based supercapacitors.

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Journal:  RSC Adv       Date:  2021-01-29       Impact factor: 3.361

9.  Data on flow cell optimization for membrane-based electrokinetic energy conversion.

Authors:  David Nicolas Østedgaard-Munck; Jacopo Catalano; Mette Birch Kristensen; Anders Bentien
Journal:  Data Brief       Date:  2017-09-01

10.  Glass/Au Composite Membranes with Gold Nanoparticles Synthesized inside Pores for Selective Ion Transport.

Authors:  Denis Lebedev; Maxim Novomlinsky; Vladimir Kochemirovsky; Ilya Ryzhkov; Irina Anfimova; Maxim Panov; Tatyana Antropova
Journal:  Materials (Basel)       Date:  2020-04-09       Impact factor: 3.623

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