Mechanochemical Synthesis of Dolomite-Related Carbonates—Insight into the Effects of Various Parameters

Author:

Jiang Ting1,Wang Chao1,Chen Min1,Hu Huimin2,Huang Junwei1,Chen Xiaofang1,Zhang Qiwu1

Affiliation:

1. School of Resources & Environmental Engineering, Wuhan University of Technology, 122 Luoshi Road, Hongshan District, Wuhan 430070, China

2. State Environmental Protection Key Laboratory of Water Environmental Simulation and Pollution Control, South China Institute of Environmental Sciences, Ministry of Ecology and Environment, Guangzhou 510655, China

Abstract

The low-temperature formation of dolomite (CaMg(CO3)2) is undoubtedly a long and interesting geological problem, which has troubled many researchers for centuries to explore the formation of dolomite. Recently, efforts have been made by synthesizing dolomite analogues such as norsethite (BaMg(CO3)2), PbMg(CO3)2, with Ba and Pb to replace Ca and investigating their reaction pathways. In this study, we reported our efforts to synthesize dolomite-related complex carbonates by using the mechanical ball milling method as a new approach to control the solid–water ratio compared to the commonly used solution method. Two analogues of norsethite and PbMg(CO3)2 have been simply obtained even at stoichiometric molar ratio of Ba/Mg = 1:1 and Pb/Mg = 1:1 with various parameters examined; and product properties including morphology and phase compositions were investigated by a range of techniques, including XRD, SEM-EDS, and FTIR. Finally, we attempted to synthesize dolomite and compared the differences from the synthesis of analogues. In conclusion, we have synthesized norsethite and PbMg(CO3)2 in one step by the ball milling method, which greatly reduces the reaction time compared with the conventional solution method and may provide other choices for the formation of dolomite.

Funder

The Key R&D Program of Hubei Province

The Fundamental Research funds for Central University

Publisher

MDPI AG

Subject

Geology,Geotechnical Engineering and Engineering Geology

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