A neutron diffraction study of boussingaultite, (NH4)2[Mg(H2O)6](SO4)2

Author:

Gatta G. Diego1ORCID,Guastella Giorgio2,Guastoni Alessandro3,Gagliardi Valentina4,Cañadillas-Delgado Laura5,Fernandez-Diaz Maria Teresa5

Affiliation:

1. Dipartimento di Scienze della Terra, Università degli Studi di Milano, Via Botticelli 23, I-20133 Milano, Italy

2. Agenzia delle Accise, Dogane e Monopoli, DTI–Lombardia, Ufficio Antifrode–Sezione Laboratori, Via Marco Bruto 14, I-20138 Milano, Italy

3. Dipartmento di Geoscienze, Università degli Studi di Padova, Via G. Gradenigo 6, I-35131 Padova, Italy

4. Istituto Gemmologico Italiano, Piazza San Sepolcro 1, I-20123 Milano, Italy

5. Institut Laue-Langevin, 71 Avenue des Martyrs, F-38042 Grenoble, France

Abstract

Abstract The crystal structure and chemical composition of boussingaultite from Pécs-Vasas, Mecsek Mountains, South Hungary, were investigated by single-crystal neutron diffraction (at 20 K) along with a series of chemical analytical techniques [i.e., gravimetric determination of sulfates, EDTA titrimetric determination of magnesium, ion selective electrode for F and Cl, indirect gravimetric determination of ammonium as (NH4,Rb,Cs,K) tetraphenylborate, inductively coupled plasma atomic emission spectroscopy for REE and other minor elements, elemental analysis for C, N, and H content, high-T mass loss for H2O content]. The concentrations of more than 50 elements were measured. The experimental formula of the boussingaultite is: [(NH4)1.77K0.22)Σ1.99[(Mg0.95Mn0.06)Σ1.01(H2O)5.7](SO4)1.99. Neutron data analysis confirms that the structure of boussingaultite is built up by isolated Mg(H2O)6-octahedra, along with isolated NH4- and SO4-tetrahedra connected by a complex H-bonds network. Mg2+ is completely solvated by H2O molecules in a typical octahedral bonding configuration. All the seven independent oxygen sites in the structure are involved in H-bonds, as donors or as acceptors. The geometry of all the H2O molecules, bonded to Mg, is in line with that usually observed in crystalline compounds. The H2O molecules show moderate-strong H-bonds, with H···Oacceptor and Odonor···Oacceptor ranging between 1.72–1.87 and 2.70–2.84 Å, respectively, along with Odonor-H···Oacceptor angles between 168–178°. The four independent N-H···O bonds show H···Oacceptor and Ndonor···Oacceptor distances ranging between 1.81–2.00 and 2.84–2.98 Å, respectively, with N-H···O angles between 158–176°. All the H-bonds of the H2O molecules and of the NH4-group involve the oxygen sites of the SO4-group as acceptors: the SO4-group is, therefore, the “bridging unit” between the NH4 and the Mg(H2O)6 units, via H-bonds. Our structure refinement proved, unambiguously, that the partial K+ vs. NH4+ replacement generates a local disorder. K lies at the N site, and its bonding configuration can be described by a distorted polyhedron with CN = 8. However, the K+ vs. NH4+ replacement implies a change in the configuration of the SO4-tetrahedron, through a sort of rotation of the polyhedron. This is the first evidence of the presence of a partial picromerite component in the boussingaultite structure, which gives rise to a local disorder likely due to the significantly different bonding configurations of the two cations. Our refinement also revealed that Mn2+ replaces Mg2+ at the Mg site. No evidence of distortion of the octahedron is observed in response to such a replacement, but the fraction of Mn2+ is modest. An analysis of previous Raman and IR results is provided, and is compared with the experimental results of this study.

Publisher

Mineralogical Society of America

Subject

Geochemistry and Petrology,Geophysics

Reference43 articles.

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2. Structural features in Tutton’s salts K2[M2+(H2O)6](SO4)2, with M2+ = Mg, Fe, Co, Ni, Cu, and Zn;Bosi;American Mineralogist,2009

3. Ricerche sulla Boussingaultite manganesifera di Larderello;Cipriani;Rendiconti Della Società Italiana di Mineralogia e Petrologia,1958

4. Raman and infrared spectroscopic study of boussingaultite and nickelboussingaultite;Culka;Spectrochimica Acta. Part A, Molecular and Biomolecular Spectroscopy,2009

5. Indexing in single-crystal diffractometry with an obstinate list of reflections;Duisenberg;Journal of Applied Crystallography,1992

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