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Structural characterization of interfaces in silica core-alumina shell microspheres by solid-state NMR spectroscopy. | LitMetric

Structural characterization of interfaces in silica core-alumina shell microspheres by solid-state NMR spectroscopy.

Solid State Nucl Magn Reson

National Center for Magnetic Resonance, Faculty of Physics, Babeș-Bolyai University, 400084, Cluj-Napoca, Romania; Institute for Interdisciplinary Research in Bio-Nano-Sciences, Babeș-Bolyai University, 400271, Cluj-Napoca, Romania. Electronic address:

Published: February 2022

AI Article Synopsis

  • This paper explores the atomic-scale structure of core-shell aluminosilicate materials, focusing on the complexities due to their amorphous nature.
  • It utilizes advanced solid-state NMR techniques to study silica core-alumina shell microspheres, both undoped and doped with gadolinium ions, synthesized using the Stöber method.
  • The findings reveal a new alumino-silicate layer at the interface where silicon and aluminum ions migrate, leading to significant structural changes and a stable core-shell arrangement.

Article Abstract

Atomic-scale description of surfaces and interfaces in core-shell aluminosilicate materials is not fully elucidated, partially due to their amorphous character and complex mechanisms that govern their properties. In this paper, new insights into nanostructured core-shell aluminosilicates have been demonstrated, by using different solid-state NMR methods, i.e Si, Si cross-polarization (CP), Al, Al triple-quantum (3Q), and H-Al heteronuclear correlation (HETCOR) MAS NMR. For this purpose, nanostructured silica core-alumina shell microspheres, undoped and doped with gadolinium ions respectively, obtained by a chemical synthesis based on the Stöber method for the silica core and electrostatic attraction for developing the alumina shell were studied. As a result, a new alumino-silicate layer formation was proved at the interface between silica core, where aluminum diffuses, on small scale, in the silica network, and alumina shell, where silicon ions migrate, on a larger scale, in the alumina network, leading to a stable core-shell structure. Moreover, this process is accompanied by significant local structural changes in the transition zone, particularly at the aluminum neighborhood, which is quite well understood now, with the power of solid-state NMR spectroscopy.

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Source
http://dx.doi.org/10.1016/j.ssnmr.2022.101773DOI Listing

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