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Dual-barrel conductance micropipet as a new approach to the study of ionic crystal dissolution kinetics.

作者信息

Kinnear Sophie L, McKelvey Kim, Snowden Michael E, Peruffo Massimo, Colburn Alex W, Unwin Patrick R

机构信息

Department of Chemistry and ‡MOAC Doctoral Training Centre, University of Warwick , Gibbet Hill Road, Coventry CV4 7AL, United Kingdom.

出版信息

Langmuir. 2013 Dec 17;29(50):15565-72. doi: 10.1021/la403630u. Epub 2013 Dec 5.

DOI:10.1021/la403630u
PMID:24224979
Abstract

A new approach to the study of ionic crystal dissolution kinetics is described, based on the use of a dual-barrel theta conductance micropipet. The solution in the pipet is undersaturated with respect to the crystal of interest, and when the meniscus at the end of the micropipet makes contact with a selected region of the crystal surface, dissolution occurs causing the solution composition to change. This is observed, with better than 1 ms time resolution, as a change in the ion conductance current, measured across a potential bias between an electrode in each barrel of the pipet. Key attributes of this new technique are: (i) dissolution can be targeted at a single crystal surface; (ii) multiple measurements can be made quickly and easily by moving the pipet to a new location on the surface; (iii) materials with a wide range of kinetics and solubilities are open to study because the duration of dissolution is controlled by the meniscus contact time; (iv) fast kinetics are readily amenable to study because of the intrinsically high mass transport rates within tapered micropipets; (v) the experimental geometry is well-defined, permitting finite element method modeling to allow quantitative analysis of experimental data. Herein, we study the dissolution of NaCl as an example system, with dissolution induced for just a few milliseconds, and estimate a first-order heterogeneous rate constant of 7.5 (±2.5) × 10(-5) cm s(-1) (equivalent surface dissolution flux ca. 0.5 μmol cm(-2) s(-1) into a completely undersaturated solution). Ionic crystals form a huge class of materials whose dissolution properties are of considerable interest, and we thus anticipate that this new localized microscale surface approach will have considerable applicability in the future.

摘要

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