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Electron delocalization in vinyl ruthenium substituted cyclophanes: Assessment of the through-space and the through-bond pathways
Authors:Philipp Mü  cke,Ruth Edge,Sé  bastien Clé  ment,Stanislav Zá  li&scaron  ,Rainer F. Winter
Affiliation:a Fachbereich Chemie der Universität Konstanz, Universitätsstraße 31, D-78457 Konstanz, Germany
b Institut für Anorganische Chemie, Fachbereich Chemie und Pharmazie der Universität Regensburg, Universitätsstraße 31, D-93040 Regensburg, Germany
c EPSRC National EPR Service, University of Manchester, School of Chemistry, Oxford Road, Manchester, M13 9PL, United Kingdom
d Institut UTINAM UMR CNRS 6213, Université de Franche Comté, 25030 Besançon, France
e J. Heyrovský Institute of Physical Chemistry, v.v.i, Academy of Sciences of the Czech Republic, Czech Republic
Abstract:Pseudo-para[2.2]paracyclophane- and [2.1]orthocyclophane-bridged diruthenium complexes 2 and 3 with two interlinked electroactive styryl ruthenium moieties have been prepared and investigated. Both complexes undergo two reversible consecutive one-electron oxidation processes which are separated by 270 or 105 mV. Stepwise electrolysis of the neutral complexes to first the mixed-valent radical cations and then the dioxidized dications under IR monitoring reveal incremental shifts of the charge-sensitive Ru(CO) bands and allow for an assignment of their radical cations as moderately or very weakly coupled mixed-valent systems of class II according to Robin and Day. Ground-state delocalization in the mixed-valent forms of these complexes as based on the CO band shifts is considerably larger for the “closed” paracyclophane as for the “half-open” orthocyclophane. Experimental findings are backed by the calculated IR band patterns and spin density distributions for radical cations of slightly simplified model complexes 2Meradical dot+ and 3Meradical dot+ with the PiPr3 ligands replaced by PMe3. Radical cations 2radical dot+ and 3radical dot+ feature a characteristic NIR band that is neither present in their neutral or fully oxidized forms nor in the radical cation of the monoruthenium [2.2]paracyclophane complex 1 with just one vinyl ruthenium moiety. These bands are thus assigned as intervalence charge-transfer (IVCT) transitions. Our results indicate that, for the radical cations, electronic coupling “through-space” via the stacked styrene decks is significantly more efficient than the “through-bond” pathway.
Keywords:Vinyl complexes   Ruthenium   Cyclophanes   Electrochemistry   Spectroelectrochemistry   Mixed-valent
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