Wan-zhong Yin, Yu-lian Wang, Qiang-dong Ji, Jin Yao, Ying Hou, Lei Wang, and Wen-xing Zhong, Synthesis and formation mechanism of micro/nano flower-like MgCO3·5H2O, Int. J. Miner. Metall. Mater., 21(2014), No. 3, pp. 304-310. https://doi.org/10.1007/s12613-014-0909-6
Cite this article as:
Wan-zhong Yin, Yu-lian Wang, Qiang-dong Ji, Jin Yao, Ying Hou, Lei Wang, and Wen-xing Zhong, Synthesis and formation mechanism of micro/nano flower-like MgCO3·5H2O, Int. J. Miner. Metall. Mater., 21(2014), No. 3, pp. 304-310. https://doi.org/10.1007/s12613-014-0909-6
Wan-zhong Yin, Yu-lian Wang, Qiang-dong Ji, Jin Yao, Ying Hou, Lei Wang, and Wen-xing Zhong, Synthesis and formation mechanism of micro/nano flower-like MgCO3·5H2O, Int. J. Miner. Metall. Mater., 21(2014), No. 3, pp. 304-310. https://doi.org/10.1007/s12613-014-0909-6
Citation:
Wan-zhong Yin, Yu-lian Wang, Qiang-dong Ji, Jin Yao, Ying Hou, Lei Wang, and Wen-xing Zhong, Synthesis and formation mechanism of micro/nano flower-like MgCO3·5H2O, Int. J. Miner. Metall. Mater., 21(2014), No. 3, pp. 304-310. https://doi.org/10.1007/s12613-014-0909-6
Micro/nano magnesium carbonate pentahydrate (MgCO3·5H2O) with flower-like morphology was synthesized using magnesite as a substrate and potassium dihydrogen phosphate as an additive. The synthesized samples were characterized by scanning electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy, thermogravimetry and differential scanning calorimetry. The influence of pyrolysis time on crystal morphology was explored. The formation mechanism was investigated on the basis of the characterized results and the crystal structure of MgCO3·5H2O. The results showed that the flower-like MgCO3·5H2O was 1.5–3.0 μm in length and 100–500 nm in diameter and was successfully obtained with a pyrolysis time of 30 min. The formation mechanism of flower-like MgCO3·5H2O is suggested to be the selective adsorption of potassium dihydrogen phosphate on the surface. The process of flower-like crystal growth is as follows: amorphous nanoparticles formation, acicular and rod monocrystal formation, flower-like monocrystal formation, and flower-like polymers (MgCO3·5H2O) crystallization. In the MgCO3·5H2O crystal, the magnesium ion presents two different octahedral coordinations corresponding to Mg(H2O)62+ and [Mg(H2O) (CO32−)2]2−, and the chemical formula of the crystal is Mg(H2O)6 · Mg(H2O)4(CO32−)2.
Micro/nano magnesium carbonate pentahydrate (MgCO3·5H2O) with flower-like morphology was synthesized using magnesite as a substrate and potassium dihydrogen phosphate as an additive. The synthesized samples were characterized by scanning electron microscopy, X-ray diffraction, Fourier transform infrared spectroscopy, thermogravimetry and differential scanning calorimetry. The influence of pyrolysis time on crystal morphology was explored. The formation mechanism was investigated on the basis of the characterized results and the crystal structure of MgCO3·5H2O. The results showed that the flower-like MgCO3·5H2O was 1.5–3.0 μm in length and 100–500 nm in diameter and was successfully obtained with a pyrolysis time of 30 min. The formation mechanism of flower-like MgCO3·5H2O is suggested to be the selective adsorption of potassium dihydrogen phosphate on the surface. The process of flower-like crystal growth is as follows: amorphous nanoparticles formation, acicular and rod monocrystal formation, flower-like monocrystal formation, and flower-like polymers (MgCO3·5H2O) crystallization. In the MgCO3·5H2O crystal, the magnesium ion presents two different octahedral coordinations corresponding to Mg(H2O)62+ and [Mg(H2O) (CO32−)2]2−, and the chemical formula of the crystal is Mg(H2O)6 · Mg(H2O)4(CO32−)2.