Effects of temperature and CO2 concentration on the early stage nucleation of calcium carbonate by reactive molecular dynamics simulations

Author:

Qin Ling1234ORCID,Yang Junyi1ORCID,Bao Jiuwen1ORCID,Sant Gaurav5,Wang Sheng3,Zhang Peng1,Gao Xiaojian6ORCID,Wang Hui7,Yu Qi3,Niu Ditao8,Bauchy Mathieu45ORCID

Affiliation:

1. School of Civil Engineering, Qingdao University of Technology 1 , Qingdao 266033, China

2. Post-doctoral Mobile Stations of Civil Engineering, Xi’an University of Architecture and Technology 2 , Xi’an 710055, China

3. Qingdao Qingjian New Material Group Co., Ltd. 3 , Qingdao 266108, China

4. Physics of AmoRphous and Inorganic Solids Laboratory (PARISlab), Department of Civil and Environmental Engineering, University of California 4 , Los Angeles, California 90095, USA

5. Institute for Carbon Management (ICM), University of California 5 , Los Angeles, California 90095, USA

6. School of Civil Engineering, Harbin Institute of Technology 6 , Harbin 150090, China

7. Ningbo Key Laboratory of Energy Geostructure 7 , Ningbo 315211, China

8. Department of Civil Engineering, State Key Laboratory of Green Building in Western China, Xi’an University of Architecture and Technology 8 , Xi’an 710055, China

Abstract

It is significant to investigate the calcium carbonate (CaCO3) precipitation mechanism during the carbon capture process; nevertheless, CaCO3 precipitation is not clearly understood yet. Understanding the carbonation mechanism at the atomic level can contribute to the mineralization capture and utilization of carbon dioxide, as well as the development of new cementitious materials with high-performance. There are many factors, such as temperature and CO2 concentration, that can influence the carbonation reaction. In order to achieve better carbonation efficiency, the reaction conditions of carbonation should be fully verified. Therefore, based on molecular dynamics simulations, this paper investigates the atomic-scale mechanism of carbonation. We investigate the effect of carbonation factors, including temperature and concentration, on the kinetics of carbonation (polymerization rate and activation energy), the early nucleation of calcium carbonate, etc. Then, we analyze the local stresses of atoms to reveal the driving force of early stage carbonate nucleation and the reasons for the evolution of polymerization rate and activation energy. Results show that the higher the calcium concentration or temperature, the higher the polymerization rate of calcium carbonate. In addition, the activation energies of the carbonation reaction increase with the decrease in calcium concentrations.

Funder

National Key Research and Development Program of China

National Natural Science Foundation of China

Natural Science Foundation of Shandong Province

National Science Foundation

China Postdoctoral Science Foundation

Team Development Plan of Shandong Province in China

Publisher

AIP Publishing

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