The inverse-trans-influence in tetravalent lanthanide and actinide bis(carbene) complexes

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作者
Matthew Gregson
Erli Lu
David P. Mills
Floriana Tuna
Eric J. L. McInnes
Christoph Hennig
Andreas C. Scheinost
Jonathan McMaster
William Lewis
Alexander J. Blake
Andrew Kerridge
Stephen T. Liddle
机构
[1] School of Chemistry,Department of Chemistry
[2] The University of Manchester,undefined
[3] EPSRC National UK EPR Facility,undefined
[4] School of Chemistry and Photon Science Institute,undefined
[5] The University of Manchester,undefined
[6] Helmholtz-Zentrum Dresden-Rossendorf,undefined
[7] Institute of Resource Ecology,undefined
[8] Bautzner Landstrasse 400,undefined
[9] The Rossendorf Beamline,undefined
[10] ESRF,undefined
[11] School of Chemistry,undefined
[12] University of Nottingham,undefined
[13] Lancaster University,undefined
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Nature Communications | / 8卷
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摘要
Across the periodic table the trans-influence operates, whereby tightly bonded ligands selectively lengthen mutually trans metal–ligand bonds. Conversely, in high oxidation state actinide complexes the inverse-trans-influence operates, where normally cis strongly donating ligands instead reside trans and actually reinforce each other. However, because the inverse-trans-influence is restricted to high-valent actinyls and a few uranium(V/VI) complexes, it has had limited scope in an area with few unifying rules. Here we report tetravalent cerium, uranium and thorium bis(carbene) complexes with trans C=M=C cores where experimental and theoretical data suggest the presence of an inverse-trans-influence. Studies of hypothetical praseodymium(IV) and terbium(IV) analogues suggest the inverse-trans-influence may extend to these ions but it also diminishes significantly as the 4f orbitals are populated. This work suggests that the inverse-trans-influence may occur beyond high oxidation state 5f metals and hence could encompass mid-range oxidation state actinides and lanthanides. Thus, the inverse-trans-influence might be a more general f-block principle.
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