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Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process

[Image: see text] The great utility and importance of zeolites in fields as diverse as industrial catalysis and medicine has driven considerable interest in the ability to target new framework types with novel properties and applications. The recently introduced and unconventional assembly, disassem...

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Autores principales: Bignami, Giulia P. M., Dawson, Daniel M., Seymour, Valerie R., Wheatley, Paul S., Morris, Russell E., Ashbrook, Sharon E.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5403117/
https://www.ncbi.nlm.nih.gov/pubmed/28319391
http://dx.doi.org/10.1021/jacs.7b00386
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author Bignami, Giulia P. M.
Dawson, Daniel M.
Seymour, Valerie R.
Wheatley, Paul S.
Morris, Russell E.
Ashbrook, Sharon E.
author_facet Bignami, Giulia P. M.
Dawson, Daniel M.
Seymour, Valerie R.
Wheatley, Paul S.
Morris, Russell E.
Ashbrook, Sharon E.
author_sort Bignami, Giulia P. M.
collection PubMed
description [Image: see text] The great utility and importance of zeolites in fields as diverse as industrial catalysis and medicine has driven considerable interest in the ability to target new framework types with novel properties and applications. The recently introduced and unconventional assembly, disassembly, organization, reassembly (ADOR) method represents one exciting new approach to obtain solids with targeted structures by selectively disassembling preprepared hydrolytically unstable frameworks and then reassembling the resulting products to form materials with new topologies. However, the hydrolytic mechanisms underlying such a powerful synthetic method are not understood in detail, requiring further investigation of the kinetic behavior and the outcome of reactions under differing conditions. In this work, we report the optimized ADOR synthesis, and subsequent solid-state characterization, of (17)O- and doubly (17)O- and (29)Si-enriched UTL-derived zeolites, by synthesis of (29)Si-enriched starting Ge-UTL frameworks and incorporation of (17)O from (17)O-enriched water during hydrolysis. (17)O and (29)Si NMR experiments are able to demonstrate that the hydrolysis and rearrangement process occurs over a much longer time scale than seen by diffraction. The observation of unexpectedly high levels of (17)O in the bulk zeolitic layers, rather than being confined only to the interlayer spacing, reveals a much more extensive hydrolytic rearrangement than previously thought. This work sheds new light on the role played by water in the ADOR process and provides insight into the detailed mechanism of the structural changes involved.
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spelling pubmed-54031172017-04-26 Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process Bignami, Giulia P. M. Dawson, Daniel M. Seymour, Valerie R. Wheatley, Paul S. Morris, Russell E. Ashbrook, Sharon E. J Am Chem Soc [Image: see text] The great utility and importance of zeolites in fields as diverse as industrial catalysis and medicine has driven considerable interest in the ability to target new framework types with novel properties and applications. The recently introduced and unconventional assembly, disassembly, organization, reassembly (ADOR) method represents one exciting new approach to obtain solids with targeted structures by selectively disassembling preprepared hydrolytically unstable frameworks and then reassembling the resulting products to form materials with new topologies. However, the hydrolytic mechanisms underlying such a powerful synthetic method are not understood in detail, requiring further investigation of the kinetic behavior and the outcome of reactions under differing conditions. In this work, we report the optimized ADOR synthesis, and subsequent solid-state characterization, of (17)O- and doubly (17)O- and (29)Si-enriched UTL-derived zeolites, by synthesis of (29)Si-enriched starting Ge-UTL frameworks and incorporation of (17)O from (17)O-enriched water during hydrolysis. (17)O and (29)Si NMR experiments are able to demonstrate that the hydrolysis and rearrangement process occurs over a much longer time scale than seen by diffraction. The observation of unexpectedly high levels of (17)O in the bulk zeolitic layers, rather than being confined only to the interlayer spacing, reveals a much more extensive hydrolytic rearrangement than previously thought. This work sheds new light on the role played by water in the ADOR process and provides insight into the detailed mechanism of the structural changes involved. American Chemical Society 2017-03-20 2017-04-12 /pmc/articles/PMC5403117/ /pubmed/28319391 http://dx.doi.org/10.1021/jacs.7b00386 Text en Copyright © 2017 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle Bignami, Giulia P. M.
Dawson, Daniel M.
Seymour, Valerie R.
Wheatley, Paul S.
Morris, Russell E.
Ashbrook, Sharon E.
Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process
title Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process
title_full Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process
title_fullStr Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process
title_full_unstemmed Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process
title_short Synthesis, Isotopic Enrichment, and Solid-State NMR Characterization of Zeolites Derived from the Assembly, Disassembly, Organization, Reassembly Process
title_sort synthesis, isotopic enrichment, and solid-state nmr characterization of zeolites derived from the assembly, disassembly, organization, reassembly process
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5403117/
https://www.ncbi.nlm.nih.gov/pubmed/28319391
http://dx.doi.org/10.1021/jacs.7b00386
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