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Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach

Zwitterionic group 14 complexes of the alkali metals of formula [C(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-1), [Si(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-2), [Ge(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-3), where M = Li, Na or K, have been prepared, structurally characterized and their electronic nature was investigated by...

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Autores principales: Li, H., Aquino, A. J. A., Cordes, D. B., Hase, W. L., Krempner, C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5360169/
https://www.ncbi.nlm.nih.gov/pubmed/28451273
http://dx.doi.org/10.1039/c6sc02390h
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author Li, H.
Aquino, A. J. A.
Cordes, D. B.
Hase, W. L.
Krempner, C.
author_facet Li, H.
Aquino, A. J. A.
Cordes, D. B.
Hase, W. L.
Krempner, C.
author_sort Li, H.
collection PubMed
description Zwitterionic group 14 complexes of the alkali metals of formula [C(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-1), [Si(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-2), [Ge(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-3), where M = Li, Na or K, have been prepared, structurally characterized and their electronic nature was investigated by computational methods. Zwitterions M-2 and M-3 were synthesized via reactions of [Si(SiMe(2)OCH(2)CH(2)OMe)(4)] (2) and [Ge(SiMe(2)OCH(2)CH(2)OMe)(4)] (3) with MOBu( t ) (M = Li, Na or K), resp., in almost quantitative yields, while M-1 were prepared from deprotonation of [HC(SiMe(2)OCH(2)CH(2)OMe)(3)] (1) with LiBu( t ), NaCH(2)Ph and KCH(2)Ph, resp. X-ray crystallographic studies and DFT calculations in the gas-phase, including calculations of the NPA charges confirm the zwitterionic nature of these compounds, with the alkali metal cations being rigidly locked and charge separated from the anion by the internal OCH(2)CH(2)OMe donor groups. Natural bond orbital (NBO) analysis and the second order perturbation theory analysis of the NBOs reveal significant hyperconjugative interactions in M-1–M-3, primarily between the lone pair and the antibonding Si–O orbitals, the extent of which decreases in the order M-1 > M-2 > M-3. The experimental basicities and the calculated gas-phase basicities of M-1–M-3 reveal the zwitterionic alkali metal methanides M-1 to be significantly stronger bases than the analogous silanides M-2 and germanium M-3.
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spelling pubmed-53601692017-04-27 Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach Li, H. Aquino, A. J. A. Cordes, D. B. Hase, W. L. Krempner, C. Chem Sci Chemistry Zwitterionic group 14 complexes of the alkali metals of formula [C(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-1), [Si(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-2), [Ge(SiMe(2)OCH(2)CH(2)OMe)(3)M], (M-3), where M = Li, Na or K, have been prepared, structurally characterized and their electronic nature was investigated by computational methods. Zwitterions M-2 and M-3 were synthesized via reactions of [Si(SiMe(2)OCH(2)CH(2)OMe)(4)] (2) and [Ge(SiMe(2)OCH(2)CH(2)OMe)(4)] (3) with MOBu( t ) (M = Li, Na or K), resp., in almost quantitative yields, while M-1 were prepared from deprotonation of [HC(SiMe(2)OCH(2)CH(2)OMe)(3)] (1) with LiBu( t ), NaCH(2)Ph and KCH(2)Ph, resp. X-ray crystallographic studies and DFT calculations in the gas-phase, including calculations of the NPA charges confirm the zwitterionic nature of these compounds, with the alkali metal cations being rigidly locked and charge separated from the anion by the internal OCH(2)CH(2)OMe donor groups. Natural bond orbital (NBO) analysis and the second order perturbation theory analysis of the NBOs reveal significant hyperconjugative interactions in M-1–M-3, primarily between the lone pair and the antibonding Si–O orbitals, the extent of which decreases in the order M-1 > M-2 > M-3. The experimental basicities and the calculated gas-phase basicities of M-1–M-3 reveal the zwitterionic alkali metal methanides M-1 to be significantly stronger bases than the analogous silanides M-2 and germanium M-3. Royal Society of Chemistry 2017-02-01 2016-10-07 /pmc/articles/PMC5360169/ /pubmed/28451273 http://dx.doi.org/10.1039/c6sc02390h Text en This journal is © The Royal Society of Chemistry 2016 https://creativecommons.org/licenses/by/3.0/This is an Open Access article distributed under the terms of the Creative Commons Attribution 3.0 Unported License (http://creativecommons.org/licenses/by/3.0/ (https://creativecommons.org/licenses/by/3.0/) ) which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Chemistry
Li, H.
Aquino, A. J. A.
Cordes, D. B.
Hase, W. L.
Krempner, C.
Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
title Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
title_full Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
title_fullStr Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
title_full_unstemmed Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
title_short Electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
title_sort electronic nature of zwitterionic alkali metal methanides, silanides and germanides – a combined experimental and computational approach
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5360169/
https://www.ncbi.nlm.nih.gov/pubmed/28451273
http://dx.doi.org/10.1039/c6sc02390h
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