Shedding light on the atomic-scale structure of amorphous silica-alumina and its Brønsted acid sites

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Abstract

In spite of the widespread applications of amorphous silica-aluminas (ASAs) in many important industrial chemical processes, their high-resolution structures have remained largely elusive. Specifically, the lack of long-range ordering in ASA precludes the use of diffraction methods while NMR spectroscopy has been limited by low sensitivity. Here, we use conventional as well as DNP-enhanced 29Si-29Si, 27Al-27Al, and 29Si-27Al solid-state NMR experiments to shed light on the ordering of atoms in ASAs prepared by flame-spray-pyrolysis. These experiments, in conjunction with a novel Monte Carlo-based approach to simulating RESPDOR dephasing curves, revealed that ASA materials obey Loewenstein's rule of aluminum avoidance. 3D 17O{1H} and 2D 17O{1H,27Al} experiments were developed to measure site-specific O-H and HO-Al distances, and show that the Brønsted acid sites originate predominantly from the pseudo-bridging silanol groups.

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Perras, F. A., Wang, Z., Kobayashi, T., Baiker, A., Huang, J., & Pruski, M. (2019). Shedding light on the atomic-scale structure of amorphous silica-alumina and its Brønsted acid sites. Physical Chemistry Chemical Physics, 21(35), 19529–19537. https://doi.org/10.1039/c9cp04099d

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