Reprint

Mineral Surface Reactions at the Nanoscale

Edited by
May 2019
220 pages
  • ISBN978-3-03897-896-1 (Paperback)
  • ISBN978-3-03897-897-8 (PDF)

This book is a reprint of the Special Issue Mineral Surface Reactions at the Nanoscale that was published in

Chemistry & Materials Science
Engineering
Environmental & Earth Sciences
Summary

Reactions at mineral surfaces are central to all geochemical processes. As minerals comprise the rocks of the Earth, the processes occurring at the mineral–aqueous fluid interface control the evolution of the rocks and hence the structure of the crust of the Earth during processes such as metamorphism, metasomatism, and weathering. In recent years focus has been concentrated on mineral surface reactions made possible through the development of advanced analytical methods such as atomic force microscopy (AFM), advanced electron microscopies (SEM and TEM), phase shift interferometry, confocal Raman spectroscopy, and advanced synchrotron-based applications, to enable mineral surfaces to be imaged and analyzed at the nanoscale. Experiments are increasingly complemented by molecular simulations to confirm or predict the results of these studies. This has enabled new and exciting possibilities to elucidate the mechanisms that govern mineral–fluid reactions.

In this Special Issue, “Mineral Surface Reactions at the Nanoscale”, we present 12 contributions that highlight the role and importance of mineral surfaces in varying fields of research.

Format
  • Paperback
License
© 2019 by the authors; CC BY-NC-ND license
Keywords
Raman spectroscopy; mineralogy; replacement reaction; isotopes; additives; biomineralisation; classical nucleation theory; interfaces; liquid precursors; minerals; mesocrystals; non-classical nucleation; pre-nucleation clusters; polymorphs; interfacial precipitation; phosphate; hematite; goethite; dissolution-precipitation; citrate; carbonation; wollastonite; catalysts; carbonic anhydrase; MOFs; carbon capture and storage; albite; amorphous; analcime; dissolution–precipitation; hydrothermal experiments; metasomatism; nepheline; sodalite; calcite; surface; kinetics; rate spectra; retreat velocity; dissolution; bioaragonite; apatite; microstructure; dissolution-reprecipitation; mineral replacement; brushite; mineral growth; calcium phosphate; adsorption; simulation; metadynamics; dissolution–precipitation; toxic metals; brucite; mineral–water interface; ferrihydrite; recrystallization; REEs; stabilization; Fe atom exchange; leaching; cyanide; pyrite; polarization microscopy; XPS; surface; re-adsorption; gold–(silver) tellurides; natural porous gold; interface-coupled dissolution–reprecipitation; hydrothermal method; calaverite; krennerite; sylvanite; n/a