4.8 Article

Electroosmotic Flow Can Generate Ion Current Rectification in Nano- and Micropores

期刊

ACS NANO
卷 4, 期 1, 页码 477-487

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nn9013438

关键词

nanopore; micropore; electroosmotic flow; Debye length; electric double layer; current rectification; fluidic diode

资金

  1. National Science Foundation [0449088]

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This paper introduces a strategy for generating ion current rectification through nano- and micropores. This method generates, ion current rectification by electroosmotic-driven flow of liquids of varying viscosity (and hence varying conductance) into-or out of the narrowest constriction of a pore. The magnitude of current rectification was described by a rectification factor, R-f, which Is defined by the ratio of the current measured at a positive voltage divided,by the current measured at a negative voltage. This method achieved rectification factors in the range of 5-15 using pores with diameters ranging from 10 nm to 2.2 mu m, These R-f values are similar to the rectification factors reported In other nanopore-based methods that did not employ segmented surface charges. Interestingly, this Work showed that in cylindrical nanopores with diameters of 10 nm and a length of at least 275 nm, electroosmotic flow was present and could generate ion current rectification. Unlike previous methods for generating ion current rectification that require nanopores with diameters comparable to the Debye length, this work demonstrated ion current rectification in micropores with diameters 500 times larger than the Debye length. Thus this method extends the concept of fluidic diodes to the micropore range. Several experiments designed to alter or remove electroosmotic flow through the pore demonstrated that electroosmotic flow was required for the mode of ion current rectification reported here. Consequently, the magnitude of current rectification could be used to indicate the presence of electroosmotic flow and the breakdown of electroosmotic flow with decreasing Ionic strength and hence increasing electric double layer overlap inside nanopores.

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