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Force-modulated reductive elimination from platinum(ii) diaryl complexes

Coupled mechanical forces are known to drive a range of covalent chemical reactions, but the effect of mechanical force applied to a spectator ligand on transition metal reactivity is relatively unexplored. Here we quantify the rate of C(sp(2))–C(sp(2)) reductive elimination from platinum(ii) diaryl...

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Autores principales: Yu, Yichen, Wang, Chenxu, Wang, Liqi, Sun, Cai-Li, Boulatov, Roman, Widenhoefer, Ross A., Craig, Stephen L.
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/PMC8386663/
https://www.ncbi.nlm.nih.gov/pubmed/34522310
http://dx.doi.org/10.1039/d1sc03182a
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author Yu, Yichen
Wang, Chenxu
Wang, Liqi
Sun, Cai-Li
Boulatov, Roman
Widenhoefer, Ross A.
Craig, Stephen L.
author_facet Yu, Yichen
Wang, Chenxu
Wang, Liqi
Sun, Cai-Li
Boulatov, Roman
Widenhoefer, Ross A.
Craig, Stephen L.
author_sort Yu, Yichen
collection PubMed
description Coupled mechanical forces are known to drive a range of covalent chemical reactions, but the effect of mechanical force applied to a spectator ligand on transition metal reactivity is relatively unexplored. Here we quantify the rate of C(sp(2))–C(sp(2)) reductive elimination from platinum(ii) diaryl complexes containing macrocyclic bis(phosphine) ligands as a function of mechanical force applied to these ligands. DFT computations reveal complex dependence of mechanochemical kinetics on the structure of the force-transducing ligand. We validated experimentally the computational finding for the most sensitive of the ligand designs, based on MeOBiphep, by coupling it to a macrocyclic force probe ligand. Consistent with the computations, compressive forces decreased the rate of reductive elimination whereas extension forces increased the rate relative to the strain-free MeOBiphep complex with a 3.4-fold change in rate over a ∼290 pN range of restoring forces. The calculated natural bite angle of the free macrocyclic ligand changes with force, but (31)P NMR analysis and calculations strongly suggest no significant force-induced perturbation of ground state geometry within the first coordination sphere of the (P–P)PtAr(2) complexes. Rather, the force/rate behavior observed across this range of forces is attributed to the coupling of force to the elongation of the O⋯O distance in the transition state for reductive elimination. The results suggest opportunities to experimentally map geometry changes associated with reactions in transition metal complexes and potential strategies for force-modulated catalysis.
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spelling pubmed-83866632021-09-13 Force-modulated reductive elimination from platinum(ii) diaryl complexes Yu, Yichen Wang, Chenxu Wang, Liqi Sun, Cai-Li Boulatov, Roman Widenhoefer, Ross A. Craig, Stephen L. Chem Sci Chemistry Coupled mechanical forces are known to drive a range of covalent chemical reactions, but the effect of mechanical force applied to a spectator ligand on transition metal reactivity is relatively unexplored. Here we quantify the rate of C(sp(2))–C(sp(2)) reductive elimination from platinum(ii) diaryl complexes containing macrocyclic bis(phosphine) ligands as a function of mechanical force applied to these ligands. DFT computations reveal complex dependence of mechanochemical kinetics on the structure of the force-transducing ligand. We validated experimentally the computational finding for the most sensitive of the ligand designs, based on MeOBiphep, by coupling it to a macrocyclic force probe ligand. Consistent with the computations, compressive forces decreased the rate of reductive elimination whereas extension forces increased the rate relative to the strain-free MeOBiphep complex with a 3.4-fold change in rate over a ∼290 pN range of restoring forces. The calculated natural bite angle of the free macrocyclic ligand changes with force, but (31)P NMR analysis and calculations strongly suggest no significant force-induced perturbation of ground state geometry within the first coordination sphere of the (P–P)PtAr(2) complexes. Rather, the force/rate behavior observed across this range of forces is attributed to the coupling of force to the elongation of the O⋯O distance in the transition state for reductive elimination. The results suggest opportunities to experimentally map geometry changes associated with reactions in transition metal complexes and potential strategies for force-modulated catalysis. The Royal Society of Chemistry 2021-07-26 /pmc/articles/PMC8386663/ /pubmed/34522310 http://dx.doi.org/10.1039/d1sc03182a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Yu, Yichen
Wang, Chenxu
Wang, Liqi
Sun, Cai-Li
Boulatov, Roman
Widenhoefer, Ross A.
Craig, Stephen L.
Force-modulated reductive elimination from platinum(ii) diaryl complexes
title Force-modulated reductive elimination from platinum(ii) diaryl complexes
title_full Force-modulated reductive elimination from platinum(ii) diaryl complexes
title_fullStr Force-modulated reductive elimination from platinum(ii) diaryl complexes
title_full_unstemmed Force-modulated reductive elimination from platinum(ii) diaryl complexes
title_short Force-modulated reductive elimination from platinum(ii) diaryl complexes
title_sort force-modulated reductive elimination from platinum(ii) diaryl complexes
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8386663/
https://www.ncbi.nlm.nih.gov/pubmed/34522310
http://dx.doi.org/10.1039/d1sc03182a
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