TY - JOUR
T1 - Genesis and Stability of Hydronium Ions in Zeolite Channels
AU - Wang, Meng
AU - Jaegers, Nicholas R.
AU - Lee, Mal Soon
AU - Wan, Chuan
AU - Hu, Jian Zhi
AU - Shi, Hui
AU - Mei, Donghai
AU - Burton, Sarah D.
AU - Camaioni, Donald M.
AU - Gutiérrez, Oliver Y.
AU - Glezakou, Vassiliki Alexandra
AU - Rousseau, Roger
AU - Wang, Yong
AU - Lercher, Johannes A.
N1 - Publisher Copyright:
© Copyright 2019 American Chemical Society.
PY - 2019/2/27
Y1 - 2019/2/27
N2 - The catalytic sites of acidic zeolite are profoundly altered by the presence of water changing the nature of the Brønsted acid site. High-resolution solid-state NMR spectroscopy shows water interacting with zeolite Brønsted acid sites, converting them to hydrated hydronium ions over a wide range of temperature and thermodynamic activity of water. A signal at 9 ppm was observed at loadings of 2-9 water molecules per Brønsted acid site and is assigned to hydrated hydronium ions on the basis of the evolution of the signal with increasing water content, chemical shift calculations, and the direct comparison with HClO4 in water. The intensity of 1H-29Si cross-polarization signal first increased and then decreased with increasing water chemical potential. This indicates that hydrogen bonds between water molecules and the tetrahedrally coordinated aluminum in the zeolite lattice weaken with the formation of hydronium ion-water clusters and increase the mobility of protons. DFT-based ab initio molecular dynamics studies at multiple temperatures and water concentrations agree well with this interpretation. Above 140 °C, however, fast proton exchange between bridging hydroxyl groups and water occurs even in the presence of only one water molecule per acid site.
AB - The catalytic sites of acidic zeolite are profoundly altered by the presence of water changing the nature of the Brønsted acid site. High-resolution solid-state NMR spectroscopy shows water interacting with zeolite Brønsted acid sites, converting them to hydrated hydronium ions over a wide range of temperature and thermodynamic activity of water. A signal at 9 ppm was observed at loadings of 2-9 water molecules per Brønsted acid site and is assigned to hydrated hydronium ions on the basis of the evolution of the signal with increasing water content, chemical shift calculations, and the direct comparison with HClO4 in water. The intensity of 1H-29Si cross-polarization signal first increased and then decreased with increasing water chemical potential. This indicates that hydrogen bonds between water molecules and the tetrahedrally coordinated aluminum in the zeolite lattice weaken with the formation of hydronium ion-water clusters and increase the mobility of protons. DFT-based ab initio molecular dynamics studies at multiple temperatures and water concentrations agree well with this interpretation. Above 140 °C, however, fast proton exchange between bridging hydroxyl groups and water occurs even in the presence of only one water molecule per acid site.
UR - http://www.scopus.com/inward/record.url?scp=85062283678&partnerID=8YFLogxK
U2 - 10.1021/jacs.8b07969
DO - 10.1021/jacs.8b07969
M3 - Article
C2 - 30698436
AN - SCOPUS:85062283678
SN - 0002-7863
VL - 141
SP - 3444
EP - 3455
JO - Journal of the American Chemical Society
JF - Journal of the American Chemical Society
IS - 8
ER -