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Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes

Several new trivalent dinuclear rare earth 2,2’‐methylenebis(6‐tert‐butyl‐4‐methylphenolate) (mbmp(2−)) complexes with the general form [Ln(2)(mbmp)(3)(thf)(n)] (Ln=Sm 1, Tb 2 (n=3), and Ho 3, Yb 4 (n=2), and a tetravalent cerium complex [Ce(mbmp)(2)(thf)(2)] (5) have been synthesised by RTP (redox...

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Autores principales: Ali, Safaa H., Shephard, Angus C. G., Wang, Jun, Guo, Zhifang, Davies, Murray S., Deacon, Glen B., Junk, Peter C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9303937/
https://www.ncbi.nlm.nih.gov/pubmed/35034432
http://dx.doi.org/10.1002/asia.202101328
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author Ali, Safaa H.
Shephard, Angus C. G.
Wang, Jun
Guo, Zhifang
Davies, Murray S.
Deacon, Glen B.
Junk, Peter C.
author_facet Ali, Safaa H.
Shephard, Angus C. G.
Wang, Jun
Guo, Zhifang
Davies, Murray S.
Deacon, Glen B.
Junk, Peter C.
author_sort Ali, Safaa H.
collection PubMed
description Several new trivalent dinuclear rare earth 2,2’‐methylenebis(6‐tert‐butyl‐4‐methylphenolate) (mbmp(2−)) complexes with the general form [Ln(2)(mbmp)(3)(thf)(n)] (Ln=Sm 1, Tb 2 (n=3), and Ho 3, Yb 4 (n=2), and a tetravalent cerium complex [Ce(mbmp)(2)(thf)(2)] (5) have been synthesised by RTP (redox transmetallation/protolysis) reactions from lanthanoid metals, Hg(C(6)F(5))(2) and the biphenol mbmpH(2). These new complexes and some previously reported partially protonated rare earth biphenolate complexes [Ln(mbmp)(mbmpH)(thf)(n)] react with lithium, aluminium, potassium and zinc organometallic reagents to form lanthanoid‐main group heterobimetallic species. When reaction mixtures containing the Ln biphenolate complexes were treated with n‐butyllithium, both molecular ([Li(thf)(2)Ln(mbmp)(2)(thf)(n)] (Ln=La 6, Pr 7 (n=2) and Er 8, Yb 9, and Lu 10 (n=1)) and charge separated ([Li(thf)(4)][Ln(mbmp)(2)(thf)(2)] (Ln=Y 11, Sm 12, Dy 13, and Ho 14) complexes were isolated. Treatment with trimethylaluminium also led to isolation of molecular ([AlMe(2)Ln(mbmp)(2)(thf)(2)] (Ln=Pr 15, Sm 16, and Tb 17)) and ionic [La(mbmp)(thf)(5)][AlMe(2)(mbmp)] (18) complexes. One gadolinium‐potassium ([K(thf)(3)Gd(mbmp)(2)(thf)(2)] (19)), and one ytterbium‐zinc species ([ZnEtYb(mbmp)(2)(thf)] (20)) were isolated from treatment of reaction mixtures with potassium bis(trimethylsilyl)amide and diethylzinc respectively.
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spelling pubmed-93039372022-07-28 Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes Ali, Safaa H. Shephard, Angus C. G. Wang, Jun Guo, Zhifang Davies, Murray S. Deacon, Glen B. Junk, Peter C. Chem Asian J Research Articles Several new trivalent dinuclear rare earth 2,2’‐methylenebis(6‐tert‐butyl‐4‐methylphenolate) (mbmp(2−)) complexes with the general form [Ln(2)(mbmp)(3)(thf)(n)] (Ln=Sm 1, Tb 2 (n=3), and Ho 3, Yb 4 (n=2), and a tetravalent cerium complex [Ce(mbmp)(2)(thf)(2)] (5) have been synthesised by RTP (redox transmetallation/protolysis) reactions from lanthanoid metals, Hg(C(6)F(5))(2) and the biphenol mbmpH(2). These new complexes and some previously reported partially protonated rare earth biphenolate complexes [Ln(mbmp)(mbmpH)(thf)(n)] react with lithium, aluminium, potassium and zinc organometallic reagents to form lanthanoid‐main group heterobimetallic species. When reaction mixtures containing the Ln biphenolate complexes were treated with n‐butyllithium, both molecular ([Li(thf)(2)Ln(mbmp)(2)(thf)(n)] (Ln=La 6, Pr 7 (n=2) and Er 8, Yb 9, and Lu 10 (n=1)) and charge separated ([Li(thf)(4)][Ln(mbmp)(2)(thf)(2)] (Ln=Y 11, Sm 12, Dy 13, and Ho 14) complexes were isolated. Treatment with trimethylaluminium also led to isolation of molecular ([AlMe(2)Ln(mbmp)(2)(thf)(2)] (Ln=Pr 15, Sm 16, and Tb 17)) and ionic [La(mbmp)(thf)(5)][AlMe(2)(mbmp)] (18) complexes. One gadolinium‐potassium ([K(thf)(3)Gd(mbmp)(2)(thf)(2)] (19)), and one ytterbium‐zinc species ([ZnEtYb(mbmp)(2)(thf)] (20)) were isolated from treatment of reaction mixtures with potassium bis(trimethylsilyl)amide and diethylzinc respectively. John Wiley and Sons Inc. 2022-01-27 2022-03-01 /pmc/articles/PMC9303937/ /pubmed/35034432 http://dx.doi.org/10.1002/asia.202101328 Text en © 2022 The Authors. Chemistry - An Asian Journal published by Wiley-VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Ali, Safaa H.
Shephard, Angus C. G.
Wang, Jun
Guo, Zhifang
Davies, Murray S.
Deacon, Glen B.
Junk, Peter C.
Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes
title Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes
title_full Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes
title_fullStr Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes
title_full_unstemmed Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes
title_short Lanthanoid Biphenolates as a Rich Source of Lanthanoid‐Main Group Heterobimetallic Complexes
title_sort lanthanoid biphenolates as a rich source of lanthanoid‐main group heterobimetallic complexes
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9303937/
https://www.ncbi.nlm.nih.gov/pubmed/35034432
http://dx.doi.org/10.1002/asia.202101328
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