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Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes

[Image: see text] Volatile lanthanide coordination complexes are critical to the generation of new optical and magnetic materials. One of the most common precursors for preparing volatile lanthanide complexes is the hydrate with the general formula Ln(hfac)(3)(H(2)O)(x) (x = 3 for La-Nd, x = 2 for S...

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Autores principales: Chappidi, Deepthi Y., Gordon, Matthew N., Ashberry, Hannah M., Huang, Junjie, Labedis, Bruce M., Cooper, Riley E., Cooper, Brandon J., Carta, Veronica, Skrabalak, Sara E., Dunbar, Kim R., Fatila, Elisabeth M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2022
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9374134/
https://www.ncbi.nlm.nih.gov/pubmed/35892174
http://dx.doi.org/10.1021/acs.inorgchem.2c01274
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author Chappidi, Deepthi Y.
Gordon, Matthew N.
Ashberry, Hannah M.
Huang, Junjie
Labedis, Bruce M.
Cooper, Riley E.
Cooper, Brandon J.
Carta, Veronica
Skrabalak, Sara E.
Dunbar, Kim R.
Fatila, Elisabeth M.
author_facet Chappidi, Deepthi Y.
Gordon, Matthew N.
Ashberry, Hannah M.
Huang, Junjie
Labedis, Bruce M.
Cooper, Riley E.
Cooper, Brandon J.
Carta, Veronica
Skrabalak, Sara E.
Dunbar, Kim R.
Fatila, Elisabeth M.
author_sort Chappidi, Deepthi Y.
collection PubMed
description [Image: see text] Volatile lanthanide coordination complexes are critical to the generation of new optical and magnetic materials. One of the most common precursors for preparing volatile lanthanide complexes is the hydrate with the general formula Ln(hfac)(3)(H(2)O)(x) (x = 3 for La-Nd, x = 2 for Sm) (hfac = 1,1,1,5,5,5-hexafluoroacetylacetonato). We have investigated the synthesis of Ln(hfac)(3)(H(2)O)(x) using more environmentally sustainable mechanochemical approaches. Characterization of the products using Fourier transform infrared spectroscopy, nuclear magnetic resonance spectroscopy, elemental analysis, and powder X-ray diffraction shows substantial differences in product distribution between methods. The mechanochemical synthesis of the hydrate complexes leads to a variety of coordination compounds including the expected hydrate product, the known retro-Claisen impurity, and hydrated protonated Hhfac ligand depending on the technique employed. Surprisingly, 10-coordinate complexes of the form Na(2)Ln(hfac)(5)·3H(2)O for Ln = La-Nd were also isolated from reactions using a mortar and pestle. The electrostatic bonding of lanthanide coordination complexes is a challenge for obtaining reproducible reactions and clean products. The reproducibility issues are most acute for the large, early lanthanides whereas for the mid to late lanthanides, reproducibility in terms of product distribution and yield is less of an issue because of their smaller size and greater charge to radius ratio. Ball milling increases reproducibility in terms of generating the desired Ln(hfac)(3)(H(2)O)(x) along with hydrated Hhfac (tetraol) and free Hhfac products. The results illustrate the dynamic behavior of lanthanide complexes in solution and the solid state as well as the structural diversity available to the early lanthanides.
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spelling pubmed-93741342022-08-13 Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes Chappidi, Deepthi Y. Gordon, Matthew N. Ashberry, Hannah M. Huang, Junjie Labedis, Bruce M. Cooper, Riley E. Cooper, Brandon J. Carta, Veronica Skrabalak, Sara E. Dunbar, Kim R. Fatila, Elisabeth M. Inorg Chem [Image: see text] Volatile lanthanide coordination complexes are critical to the generation of new optical and magnetic materials. One of the most common precursors for preparing volatile lanthanide complexes is the hydrate with the general formula Ln(hfac)(3)(H(2)O)(x) (x = 3 for La-Nd, x = 2 for Sm) (hfac = 1,1,1,5,5,5-hexafluoroacetylacetonato). We have investigated the synthesis of Ln(hfac)(3)(H(2)O)(x) using more environmentally sustainable mechanochemical approaches. Characterization of the products using Fourier transform infrared spectroscopy, nuclear magnetic resonance spectroscopy, elemental analysis, and powder X-ray diffraction shows substantial differences in product distribution between methods. The mechanochemical synthesis of the hydrate complexes leads to a variety of coordination compounds including the expected hydrate product, the known retro-Claisen impurity, and hydrated protonated Hhfac ligand depending on the technique employed. Surprisingly, 10-coordinate complexes of the form Na(2)Ln(hfac)(5)·3H(2)O for Ln = La-Nd were also isolated from reactions using a mortar and pestle. The electrostatic bonding of lanthanide coordination complexes is a challenge for obtaining reproducible reactions and clean products. The reproducibility issues are most acute for the large, early lanthanides whereas for the mid to late lanthanides, reproducibility in terms of product distribution and yield is less of an issue because of their smaller size and greater charge to radius ratio. Ball milling increases reproducibility in terms of generating the desired Ln(hfac)(3)(H(2)O)(x) along with hydrated Hhfac (tetraol) and free Hhfac products. The results illustrate the dynamic behavior of lanthanide complexes in solution and the solid state as well as the structural diversity available to the early lanthanides. American Chemical Society 2022-07-27 2022-08-08 /pmc/articles/PMC9374134/ /pubmed/35892174 http://dx.doi.org/10.1021/acs.inorgchem.2c01274 Text en © 2022 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Chappidi, Deepthi Y.
Gordon, Matthew N.
Ashberry, Hannah M.
Huang, Junjie
Labedis, Bruce M.
Cooper, Riley E.
Cooper, Brandon J.
Carta, Veronica
Skrabalak, Sara E.
Dunbar, Kim R.
Fatila, Elisabeth M.
Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes
title Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes
title_full Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes
title_fullStr Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes
title_full_unstemmed Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes
title_short Mechanochemical Syntheses of Ln(hfac)(3)(H(2)O)(x) (Ln = La-Sm, Tb): Isolation of 10-, 9-, and 8-Coordinate Ln(hfac)(n) Complexes
title_sort mechanochemical syntheses of ln(hfac)(3)(h(2)o)(x) (ln = la-sm, tb): isolation of 10-, 9-, and 8-coordinate ln(hfac)(n) complexes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9374134/
https://www.ncbi.nlm.nih.gov/pubmed/35892174
http://dx.doi.org/10.1021/acs.inorgchem.2c01274
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