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Design of pure heterodinuclear lanthanoid cryptate complexes

Heterolanthanide complexes are difficult to synthesize owing to the similar chemistry of the lanthanide ions. Consequently, very few purely heterolanthanide complexes have been synthesized. This is despite the fact that such complexes hold interesting optical and magnetic properties. To fine-tune th...

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Autores principales: Buch, Christian D., Hansen, Steen H., Mitcov, Dmitri, Tram, Camilla M., Nichol, Gary S., Brechin, Euan K., Piligkos, Stergios
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153240/
https://www.ncbi.nlm.nih.gov/pubmed/34123326
http://dx.doi.org/10.1039/d1sc00987g
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author Buch, Christian D.
Hansen, Steen H.
Mitcov, Dmitri
Tram, Camilla M.
Nichol, Gary S.
Brechin, Euan K.
Piligkos, Stergios
author_facet Buch, Christian D.
Hansen, Steen H.
Mitcov, Dmitri
Tram, Camilla M.
Nichol, Gary S.
Brechin, Euan K.
Piligkos, Stergios
author_sort Buch, Christian D.
collection PubMed
description Heterolanthanide complexes are difficult to synthesize owing to the similar chemistry of the lanthanide ions. Consequently, very few purely heterolanthanide complexes have been synthesized. This is despite the fact that such complexes hold interesting optical and magnetic properties. To fine-tune these properties, it is important that one can choose complexes with any given combination of lanthanides. Herein we report a synthetic procedure which yields pure heterodinuclear lanthanide cryptates LnLn*LX(3) (X = NO(3)(−) or OTf(−)) based on the cryptand H(3)L = N[(CH(2))(2)N[double bond, length as m-dash]CH–R–CH[double bond, length as m-dash]N–(CH(2))(2)](3)N (R = m-C(6)H(2)OH-2-Me-5). In the synthesis the choice of counter ion and solvent proves crucial in controlling the Ln–Ln* composition. Choosing the optimal solvent and counter ion afford pure heterodinuclear complexes with any given combination of Gd(iii)–Lu(iii) including Y(iii). To demonstrate the versatility of the synthesis all dinuclear combinations of Y(iii), Gd(iii), Yb(iii) and Lu(iii) were synthesized resulting in 10 novel complexes of the form LnLn*L(OTf)(3) with LnLn* = YbGd 1, YbY 2, YbLu 3, YbYb 4, LuGd 5, LuY 6, LuLu 7, YGd 8, YY 9 and GdGd 10. Through the use of (1)H, (13)C NMR and mass spectrometry the heterodinuclear nature of YbGd, YbY, YbLu, LuGd, LuY and YGd was confirmed. Crystal structures of LnLn*L(NO(3))(3) reveal short Ln–Ln distances of ∼3.5 Å. Using SQUID magnetometry the exchange coupling between the lanthanide ions was found to be anti-ferromagnetic for GdGd and YbYb while ferromagnetic for YbGd.
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spelling pubmed-81532402021-06-11 Design of pure heterodinuclear lanthanoid cryptate complexes Buch, Christian D. Hansen, Steen H. Mitcov, Dmitri Tram, Camilla M. Nichol, Gary S. Brechin, Euan K. Piligkos, Stergios Chem Sci Chemistry Heterolanthanide complexes are difficult to synthesize owing to the similar chemistry of the lanthanide ions. Consequently, very few purely heterolanthanide complexes have been synthesized. This is despite the fact that such complexes hold interesting optical and magnetic properties. To fine-tune these properties, it is important that one can choose complexes with any given combination of lanthanides. Herein we report a synthetic procedure which yields pure heterodinuclear lanthanide cryptates LnLn*LX(3) (X = NO(3)(−) or OTf(−)) based on the cryptand H(3)L = N[(CH(2))(2)N[double bond, length as m-dash]CH–R–CH[double bond, length as m-dash]N–(CH(2))(2)](3)N (R = m-C(6)H(2)OH-2-Me-5). In the synthesis the choice of counter ion and solvent proves crucial in controlling the Ln–Ln* composition. Choosing the optimal solvent and counter ion afford pure heterodinuclear complexes with any given combination of Gd(iii)–Lu(iii) including Y(iii). To demonstrate the versatility of the synthesis all dinuclear combinations of Y(iii), Gd(iii), Yb(iii) and Lu(iii) were synthesized resulting in 10 novel complexes of the form LnLn*L(OTf)(3) with LnLn* = YbGd 1, YbY 2, YbLu 3, YbYb 4, LuGd 5, LuY 6, LuLu 7, YGd 8, YY 9 and GdGd 10. Through the use of (1)H, (13)C NMR and mass spectrometry the heterodinuclear nature of YbGd, YbY, YbLu, LuGd, LuY and YGd was confirmed. Crystal structures of LnLn*L(NO(3))(3) reveal short Ln–Ln distances of ∼3.5 Å. Using SQUID magnetometry the exchange coupling between the lanthanide ions was found to be anti-ferromagnetic for GdGd and YbYb while ferromagnetic for YbGd. The Royal Society of Chemistry 2021-04-15 /pmc/articles/PMC8153240/ /pubmed/34123326 http://dx.doi.org/10.1039/d1sc00987g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Buch, Christian D.
Hansen, Steen H.
Mitcov, Dmitri
Tram, Camilla M.
Nichol, Gary S.
Brechin, Euan K.
Piligkos, Stergios
Design of pure heterodinuclear lanthanoid cryptate complexes
title Design of pure heterodinuclear lanthanoid cryptate complexes
title_full Design of pure heterodinuclear lanthanoid cryptate complexes
title_fullStr Design of pure heterodinuclear lanthanoid cryptate complexes
title_full_unstemmed Design of pure heterodinuclear lanthanoid cryptate complexes
title_short Design of pure heterodinuclear lanthanoid cryptate complexes
title_sort design of pure heterodinuclear lanthanoid cryptate complexes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8153240/
https://www.ncbi.nlm.nih.gov/pubmed/34123326
http://dx.doi.org/10.1039/d1sc00987g
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