JpGU-AGU Joint Meeting 2020

講演情報

[E] 口頭発表

セッション記号 S (固体地球科学) » S-MP 岩石学・鉱物学

[S-MP36] 鉱物の物理化学

コンビーナ:鎌田 誠司(東北大学学際科学フロンティア研究所)、鹿山 雅裕(東京大学大学院総合文化研究科広域科学専攻広域システム科学系)

[SMP36-05] Crystal structure of nesquehonite, MgCO33(H,D)2O by neutron diffraction, Raman spectroscopy, and thermal analysis

*山本 弦一郎1興野 純1阿部 淳2佐野 亜沙美3服部 高典3 (1.筑波大学、2.総合科学研究機構、3.日本原子力研究開発機構)

キーワード:ネスケホン石、炭酸マグネシウム水和物、中性子線回折、ラマン分光、熱分析、水素結合ネットワーク

Neutron diffraction, Raman spectroscopy, and thermal analysis were performed to investigate the composition, structure, and formation conditions of magnesium carbonate hydrate, nesquehonite. Nesquehonite was prepared from a mixture of MgCl2 and Na2CO3 solution at pH 10.9. The crystal structure of deuterated nesquehonite was analyzed by Rietveld refinement of the time-of-flight neutron powder diffraction pattern. The crystal structure possessed monoclinic space group P21/n with lattice parameters of a = 7.72100(12), b = 5.37518(7), c = 12.1430(3) Å, β = 90.165(4) o, and V = 503.956(13) Å3. The refinement with a final crystal structure model of deuterated nesquehonite converged to wRp = 4.22 % and Rp = 3.50 % (Fig. 1). The positions of six deuterium (D) atoms were successfully determined. The result indicated that the D atoms were coordinated to O1, O2, and O6 atoms as water molecules in nesquehonite. It can be therefore considered that nesquehonite obtained in the study had the chemical formula of MgCO3・3D2O. The Raman bands corresponding to the CO3 bending and stretching vibrations and the OH(OD) stretching vibration agreed substantially with those given by previous studies. The OH stretching vibration at 3555 cm-1 was also well consistent with those reported in the literature. It was experimentally impossible to distinguish the difference in chemical formula between MgCO3・3H2O and Mg(HCO3)(OH)・2H2O by using the powder XRD pattern and the Raman bands of the OH stretching vibrations. The differential thermal analysis (DTA) curve showed three endothermic peaks corresponding to three dehydration reactions, which indicated that three water molecules were released step by step from the MgCO3・3H2O nesquehonite. There is a distinct difference in dehydration behavior between MgCO3・3H2O and Mg(HCO3)(OH)・2H2O. Therefore, the thermal analysis would be a most useful tool to distinguish the difference in chemical formula of nesquehonite.