Evolution of nanoporosity in dealloying
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- 1 March 2001
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 410 (6827) , 450-453
- https://doi.org/10.1038/35068529
Abstract
Dealloying is a common corrosion process during which an alloy is ‘parted’ by the selective dissolution of the most electrochemically active of its elements. This process results in the formation of a nanoporous sponge composed almost entirely of the more noble alloy constituents1. Although considerable attention has been devoted to the morphological aspects of the dealloying process, its underlying physical mechanism has remained unclear2. Here we propose a continuum model that is fully consistent with experiments and theoretical simulations of alloy dissolution, and demonstrate that nanoporosity in metals is due to an intrinsic dynamical pattern formation process. That is, pores form because the more noble atoms are chemically driven to aggregate into two-dimensional clusters by a phase separation process (spinodal decomposition) at the solid–electrolyte interface, and the surface area continuously increases owing to etching. Together, these processes evolve porosity with a characteristic length scale predicted by our continuum model. We expect that chemically tailored nanoporous gold made by dealloying Ag-Au should be suitable for sensor applications, particularly in a biomaterials context.Keywords
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This publication has 20 references indexed in Scilit:
- Metallic CorrosionScience, 1994
- Curvature Effects in Alloy DissolutionJournal of the Electrochemical Society, 1993
- Ductile-brittle transition in random porous AuPhysical Review Letters, 1992
- Passivity breakdown and pitting corrosion of binary alloysNature, 1991
- Computer simulations of corrosion: Selective dissolution of binary alloysPhilosophical Magazine A, 1989
- Pre-Columbian Surface MetallurgyScientific American, 1984
- Characteristic features of alloy polarization curvesCorrosion Science, 1983
- Corrosion micromorphology of noble metal alloys and depletion gildingNature, 1979
- Electrolytic Dissolution of Binary Alloys Containing a Noble MetalJournal of the Electrochemical Society, 1967
- Zur Theorie der Resistenzgrenzen in MischkristallenZeitschrift für anorganische und allgemeine Chemie, 1921