Low temperature synthesis and characterization of nesquehonite

Nesquehonite, Mg(HCO3)(OH) DT 2H2O or MgCO3-3H2O, was named after its type locality in Nesquehoning, Pennsylvania, USA. The structure of nesquehonite can be envisaged as infinite chains of corner sharing MgO6 octahedra along the b-axis. Within these chains CO32- groups link 3MgO6 octahedra by two co...

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Veröffentlicht in:Journal of materials science letters 2003-06, Vol.22 (11), p.825-829
Hauptverfasser: KLOPROGGE, J. T, MARTENS, W. N, NOTHDURFT, L, DUONG, L. V, WEBB, G. E
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container_end_page 829
container_issue 11
container_start_page 825
container_title Journal of materials science letters
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creator KLOPROGGE, J. T
MARTENS, W. N
NOTHDURFT, L
DUONG, L. V
WEBB, G. E
description Nesquehonite, Mg(HCO3)(OH) DT 2H2O or MgCO3-3H2O, was named after its type locality in Nesquehoning, Pennsylvania, USA. The structure of nesquehonite can be envisaged as infinite chains of corner sharing MgO6 octahedra along the b-axis. Within these chains CO32- groups link 3MgO6 octahedra by two common corners and one edge. This structural arrangement causes strong distortion of the octahedra. Chains are interconnected by hydrogen bonds only, whereby each Mg atom is coordinated to two water ligands and one free water molecule is located in between the chains. Under natural conditions nesquehonite can form in evaporites depending on the availability of Mg2+ ions in solution relative to other cations, such as Ca2+. Additionally, nesquehonite occurs as an alteration product in the form of scales or efflorescences on existing carbonate rocks, serpentine, or volcanic breccias. Interestingly it has also been observed on the surface of a limited number of meteorites found in Antarctic regions, where it has formed by reactions of the meteorite minerals with terrestrial water and CO2 at near freezing temperatures. Nesquehonite has also been identified on the surfaces of manmade materials, such as bricks and mortar. The synthesis of nesquehonite forms a continuum in our work on the synthesis and study of the vibrational spectroscopy of natural and synthetic materials in the hydroxide, carbonate, and hydroxycarbonate groups.
doi_str_mv 10.1023/A:1023916326626
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subjects Cross-disciplinary physics: materials science
rheology
Exact sciences and technology
Growth from solutions
Materials science
Methods of crystal growth
physics of crystal growth
Physics
title Low temperature synthesis and characterization of nesquehonite
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