TY - JOUR
T1 - Confined water dissociation in microporous defective silicates
T2 - Mechanism, dipole distribution, and impact on substrate properties
AU - Manzano, Hegoi
AU - Moeini, Sina
AU - Marinelli, Francis
AU - Van Duin, Adri C.T.
AU - Ulm, Franz Josef
AU - Pellenq, Roland J.M.
PY - 2012/2/1
Y1 - 2012/2/1
N2 - Interest in microporous materials has risen in recent years, as they offer a confined environment that is optimal to enhance chemical reactions. Calcium silicate hydrate (C-S-H) gel, the main component of cement, presents a layered structure with sub-nanometer-size disordered pores filled with water and cations. The size of the pores and the hydrophilicity of the environment make C-S-H gel an excellent system to study the possibility of confined water reactions. To investigate it, we have performed molecular dynamics simulations using the ReaxFF force field. The results show that water does dissociate to form hydroxyl groups. We have analyzed the water dissociation mechanism, as well as the changes in the structure and water affinity of the C-S-H matrix and water polarization, comparing the results with the behavior of water in a defective zeolite. Finally, we establish a relationship between water dissociation in C-S-H gel and the increase of hardness due to a transformation from a two- to a three-dimensional structure.
AB - Interest in microporous materials has risen in recent years, as they offer a confined environment that is optimal to enhance chemical reactions. Calcium silicate hydrate (C-S-H) gel, the main component of cement, presents a layered structure with sub-nanometer-size disordered pores filled with water and cations. The size of the pores and the hydrophilicity of the environment make C-S-H gel an excellent system to study the possibility of confined water reactions. To investigate it, we have performed molecular dynamics simulations using the ReaxFF force field. The results show that water does dissociate to form hydroxyl groups. We have analyzed the water dissociation mechanism, as well as the changes in the structure and water affinity of the C-S-H matrix and water polarization, comparing the results with the behavior of water in a defective zeolite. Finally, we establish a relationship between water dissociation in C-S-H gel and the increase of hardness due to a transformation from a two- to a three-dimensional structure.
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U2 - 10.1021/ja209152n
DO - 10.1021/ja209152n
M3 - Article
C2 - 22239553
AN - SCOPUS:84856488079
SN - 0002-7863
VL - 134
SP - 2208
EP - 2215
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 4
ER -