TY - JOUR
T1 - Solid wetting-layers in inorganic nano-reactors
T2 - The water in imogolite nanotube case
AU - Monet, Geoffrey
AU - Paineau, Erwan
AU - Chai, Ziwei
AU - Amara, Mohamed S.
AU - Orecchini, Andrea
AU - Jimenéz-Ruiz, Mónica
AU - Ruiz-Caridad, Alicia
AU - Fine, Lucas
AU - Rouzière, Stéphan
AU - Liu, Li Min
AU - Teobaldi, Gilberto
AU - Rols, Stéphane
AU - Launois, Pascale
N1 - Publisher Copyright:
© The Royal Society of Chemistry 2020.
PY - 2020/5
Y1 - 2020/5
N2 - By combined use of wide-angle X-ray scattering, thermo-gravimetric analysis, inelastic neutron scattering, density functional theory and density functional theory molecular dynamics simulations, we investigate the structure, dynamics and stability of the water wetting-layer in single-walled aluminogermanate imogolite nanotubes (SW Ge-INTs): an archetypal system for synthetically controllable and monodisperse nano-reactors. We demonstrate that the water wetting-layer is strongly bound and solid-like up to 300 K under atmospheric pressure, with dynamics markedly different from that of bulk water. Atomic-scale characterisation of the wetting-layer reveals organisation of the H2O molecules in a curved triangular sublattice stabilised by the formation of three H-bonds to the nanotube's inner surface, with covalent interactions sufficiently strong to promote energetically favourable decoupling of the H2O molecules in the adlayer. The evidenced changes in the local composition, structure, electrostatics and dynamics of the Ge-INT's inner surface upon the formation of the solid wetting-layer demonstrate solvent-mediated functionalisation of the nanotube's cavity at room temperature and pressure, suggesting new strategies for the design of nano-rectors towards potential control of chemical reactivity in nano-confined volumes.
AB - By combined use of wide-angle X-ray scattering, thermo-gravimetric analysis, inelastic neutron scattering, density functional theory and density functional theory molecular dynamics simulations, we investigate the structure, dynamics and stability of the water wetting-layer in single-walled aluminogermanate imogolite nanotubes (SW Ge-INTs): an archetypal system for synthetically controllable and monodisperse nano-reactors. We demonstrate that the water wetting-layer is strongly bound and solid-like up to 300 K under atmospheric pressure, with dynamics markedly different from that of bulk water. Atomic-scale characterisation of the wetting-layer reveals organisation of the H2O molecules in a curved triangular sublattice stabilised by the formation of three H-bonds to the nanotube's inner surface, with covalent interactions sufficiently strong to promote energetically favourable decoupling of the H2O molecules in the adlayer. The evidenced changes in the local composition, structure, electrostatics and dynamics of the Ge-INT's inner surface upon the formation of the solid wetting-layer demonstrate solvent-mediated functionalisation of the nanotube's cavity at room temperature and pressure, suggesting new strategies for the design of nano-rectors towards potential control of chemical reactivity in nano-confined volumes.
UR - https://www.scopus.com/pages/publications/85085727118
U2 - 10.1039/d0na00128g
DO - 10.1039/d0na00128g
M3 - 文章
AN - SCOPUS:85085727118
SN - 2516-0230
VL - 2
SP - 1869
EP - 1877
JO - Nanoscale Advances
JF - Nanoscale Advances
IS - 5
ER -