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Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes
Cooperative dual site activation of boranes by redox-active 1,3-N,S-chelated ruthenium species, mer-[PR(3){κ(2)-N,S-(L)}(2)Ru{κ(1)-S-(L)}], (mer-2a: R = Cy, mer-2b: R = Ph; L = NC(7)H(4)S(2)), generated from the aerial oxidation of borate complexes, [PR(3){κ(2)-N,S-(L)}Ru{κ(3)-H,S,S′-BH(2)(L)(2)}] (...
Autores principales: | , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
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The Royal Society of Chemistry
2022
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9337726/ https://www.ncbi.nlm.nih.gov/pubmed/35974760 http://dx.doi.org/10.1039/d2sc00907b |
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author | Zafar, Mohammad Ahmad, Asif Saha, Suvam Ramalakshmi, Rongala Roisnel, Thierry Ghosh, Sundargopal |
author_facet | Zafar, Mohammad Ahmad, Asif Saha, Suvam Ramalakshmi, Rongala Roisnel, Thierry Ghosh, Sundargopal |
author_sort | Zafar, Mohammad |
collection | PubMed |
description | Cooperative dual site activation of boranes by redox-active 1,3-N,S-chelated ruthenium species, mer-[PR(3){κ(2)-N,S-(L)}(2)Ru{κ(1)-S-(L)}], (mer-2a: R = Cy, mer-2b: R = Ph; L = NC(7)H(4)S(2)), generated from the aerial oxidation of borate complexes, [PR(3){κ(2)-N,S-(L)}Ru{κ(3)-H,S,S′-BH(2)(L)(2)}] (trans–mer-1a: R = Cy, trans–mer-1b: R = Ph; L = NC(7)H(4)S(2)), has been investigated. Utilizing the rich electronic behaviour of these 1,3-N,S-chelated ruthenium species, we have established that a combination of redox-active ligands and metal–ligand cooperativity has a big influence on the multisite borane activation. For example, treatment of mer-2a–b with BH(3)·THF led to the isolation of fac-[PR(3)Ru{κ(3)-H,S,S′-(NH(2)BSBH(2)N)(S(2)C(7)H(4))(2)}] (fac-3a: R = Cy and fac-3b: R = Ph) that captured boranes at both sites of the κ(2)-N,S-chelated ruthenacycles. The core structure of fac-3a and fac-3b consists of two five-membered ruthenacycles [RuBNCS] which are fused by one butterfly moiety [RuB(2)S]. Analogous fac-3c, [PPh(3)Ru{κ(3)-H,S,S′-(NH(2)BSBH(2)N)(SC(5)H(4))(2)}], can also be synthesized from the reaction of BH(3)·THF with [PPh(3){κ(2)-N,S-(SNC(5)H(4))}{κ(3)-H,S,S′-BH(2)(SNH(4)C(5))(2)}Ru], cis–fac-1c. In stark contrast, when mer-2b was treated with BH(2)Mes (Mes = 2,4,6-trimethyl phenyl) it led to the formation of trans- and cis-bis(dihydroborate) complexes [{κ(3)-S,H,H-(NH(2)BMes)Ru(S(2)C(7)H(4))}(2)], (trans-4 and cis-4). Both the complexes have two five-membered [Ru–(H)(2)–B–NCS] ruthenacycles with κ(2)-H–H coordination modes. Density functional theory (DFT) calculations suggest that the activation of boranes across the dual Ru–N site is more facile than the Ru–S one. |
format | Online Article Text |
id | pubmed-9337726 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | The Royal Society of Chemistry |
record_format | MEDLINE/PubMed |
spelling | pubmed-93377262022-08-15 Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes Zafar, Mohammad Ahmad, Asif Saha, Suvam Ramalakshmi, Rongala Roisnel, Thierry Ghosh, Sundargopal Chem Sci Chemistry Cooperative dual site activation of boranes by redox-active 1,3-N,S-chelated ruthenium species, mer-[PR(3){κ(2)-N,S-(L)}(2)Ru{κ(1)-S-(L)}], (mer-2a: R = Cy, mer-2b: R = Ph; L = NC(7)H(4)S(2)), generated from the aerial oxidation of borate complexes, [PR(3){κ(2)-N,S-(L)}Ru{κ(3)-H,S,S′-BH(2)(L)(2)}] (trans–mer-1a: R = Cy, trans–mer-1b: R = Ph; L = NC(7)H(4)S(2)), has been investigated. Utilizing the rich electronic behaviour of these 1,3-N,S-chelated ruthenium species, we have established that a combination of redox-active ligands and metal–ligand cooperativity has a big influence on the multisite borane activation. For example, treatment of mer-2a–b with BH(3)·THF led to the isolation of fac-[PR(3)Ru{κ(3)-H,S,S′-(NH(2)BSBH(2)N)(S(2)C(7)H(4))(2)}] (fac-3a: R = Cy and fac-3b: R = Ph) that captured boranes at both sites of the κ(2)-N,S-chelated ruthenacycles. The core structure of fac-3a and fac-3b consists of two five-membered ruthenacycles [RuBNCS] which are fused by one butterfly moiety [RuB(2)S]. Analogous fac-3c, [PPh(3)Ru{κ(3)-H,S,S′-(NH(2)BSBH(2)N)(SC(5)H(4))(2)}], can also be synthesized from the reaction of BH(3)·THF with [PPh(3){κ(2)-N,S-(SNC(5)H(4))}{κ(3)-H,S,S′-BH(2)(SNH(4)C(5))(2)}Ru], cis–fac-1c. In stark contrast, when mer-2b was treated with BH(2)Mes (Mes = 2,4,6-trimethyl phenyl) it led to the formation of trans- and cis-bis(dihydroborate) complexes [{κ(3)-S,H,H-(NH(2)BMes)Ru(S(2)C(7)H(4))}(2)], (trans-4 and cis-4). Both the complexes have two five-membered [Ru–(H)(2)–B–NCS] ruthenacycles with κ(2)-H–H coordination modes. Density functional theory (DFT) calculations suggest that the activation of boranes across the dual Ru–N site is more facile than the Ru–S one. The Royal Society of Chemistry 2022-06-23 /pmc/articles/PMC9337726/ /pubmed/35974760 http://dx.doi.org/10.1039/d2sc00907b Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/ |
spellingShingle | Chemistry Zafar, Mohammad Ahmad, Asif Saha, Suvam Ramalakshmi, Rongala Roisnel, Thierry Ghosh, Sundargopal Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes |
title | Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes |
title_full | Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes |
title_fullStr | Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes |
title_full_unstemmed | Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes |
title_short | Cooperative B–H bond activation: dual site borane activation by redox active κ(2)-N,S-chelated complexes |
title_sort | cooperative b–h bond activation: dual site borane activation by redox active κ(2)-n,s-chelated complexes |
topic | Chemistry |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9337726/ https://www.ncbi.nlm.nih.gov/pubmed/35974760 http://dx.doi.org/10.1039/d2sc00907b |
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