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  • 2020 (1)
  • 2018 (2)
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Document Type

  • Journal article (3)
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Language

  • English (4)

Keywords

  • boron (3)
  • carbenes (2)
  • diborenes (2)
  • diradicals (2)
  • Boron (1)
  • \(\pi\) interactions (1)
  • anionic dimetalloborylene complexes (1)
  • chemical bonding (1)
  • crystal structure (1)
  • main group elements (1)
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Author

  • Braunschweig, Holger (4)
  • Ewing, William C. (4)
  • Dellermann, Theresa (3)
  • Dewhurst, Rian D. (3)
  • Bill, Eckhard (2)
  • Böhnke, Julian (2)
  • Celik, Mehmet Ali (2)
  • Demeshko, Serhiy (2)
  • Engels, Bernd (2)
  • Hammond, Kai (2)
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Institute

  • Institut für Anorganische Chemie (4)
  • Institut für Physikalische und Theoretische Chemie (2)

EU-Project number / Contract (GA) number

  • 669054 (3)

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\(\pi\)‐Complexes of Diborynes with Main Group Atoms (2020)
Ewing, William C. ; Dellermann, Theresa ; Angel Wong, Y. T. ; Mattock, James D. ; Vargas, Alfredo ; Bryce, David L. ; Dewhurst, Rian D. ; Braunschweig, Holger
We present herein an in‐depth study of complexes in which a molecule containing a boron‐boron triple bond is bound to tellurate cations. The analysis allows the description of these salts as true π complexes between the B−B triple bond and the tellurium center. These complexes thus extend the well‐known Dewar‐Chatt‐Duncanson model of bonding to compounds made up solely of p block elements. Structural, spectroscopic and computational evidence is offered to argue that a set of recently reported heterocycles consisting of phenyltellurium cations complexed to diborynes bear all the hallmarks of \(\pi\)‐complexes in the \(\pi\)‐complex/metallacycle continuum envisioned by Joseph Chatt. Described as such, these compounds are unique in representing the extreme of a metal‐free continuum with conventional unsaturated three‐membered rings (cyclopropenes, azirenes, borirenes) occupying the opposite end.
Isolation of diradical products of twisted double bonds (2018)
Böhnke, Julian ; Dellermann, Theresa ; Celik, Mehmet Ali ; Krummenacher, Ivo ; Dewhurst, Rian D. ; Demeshko, Serhiy ; Ewing, William C. ; Hammond, Kai ; Heß, Merlin ; Bill, Eckhard ; Welz, Eileen ; Röhr, Merle I. S. ; Mitric, Roland ; Engels, Bernd ; Meyer, Franc ; Braunschweig, Holger
Molecules containing multiple bonds between atoms—most often in the form of olefins—are ubiquitous in nature, commerce, and science, and as such have a huge impact on everyday life. Given their prominence, over the last few decades, frequent attempts have been made to perturb the structure and reactivity of multiply-bound species through bending and twisting. However, only modest success has been achieved in the quest to completely twist double bonds in order to homolytically cleave the associated π bond. Here, we present the isolation of double-bond-containing species based on boron, as well as their fully twisted diradical congeners, by the incorporation of attached groups with different electronic properties. The compounds comprise a structurally authenticated set of diamagnetic multiply-bound and diradical singly-bound congeners of the same class of compound.
Isolation of diborenes and their 90°-twisted diradical congeners (2018)
Böhnke, Julian ; Dellermann, Theresa ; Celik, Mehmet Ali ; Krummenacher, Ivo ; Dewhurst, Rian D. ; Demeshko, Serhiy ; Ewing, William C. ; Hammond, Kai ; Heß, Merlin ; Bill, Eckhard ; Welz, Eileen ; Röhr, Merle I. S. ; Mitric, Roland ; Engels, Bernd ; Meyer, Franc ; Braunschweig, Holger
Molecules containing multiple bonds between atoms—most often in the form of olefins—are ubiquitous in nature, commerce, and science, and as such have a huge impact on everyday life. Given their prominence, over the last few decades, frequent attempts have been made to perturb the structure and reactivity of multiply-bound species through bending and twisting. However, only modest success has been achieved in the quest to completely twist double bonds in order to homolytically cleave the associated π bond. Here, we present the isolation of double-bond-containing species based on boron, as well as their fully twisted diradical congeners, by the incorporation of attached groups with different electronic properties. The compounds comprise a structurally authenticated set of diamagnetic multiply-bound and diradical singly-bound congeners of the same class of compound.
Trimetallaborides as starting points for the syntheses of large metal-rich molecular borides and clusters (2016)
Braunschweig, Holger ; Ewing, William C. ; Ghosh, Sundargopal ; Kramer, Thomas ; Mattock, James D. ; Östreicher, Sebastian ; Vargas, Alfredo ; Werner, Christine
Treatment of an anionic dimanganaborylene complex ([{Cp(CO)\(_2\)Mn}\(_2\)B]\(^-\)) with coinage metal cations stabilized by a very weakly coordinating Lewis base (SMe\(_2\)) led to the coordination of the incoming metal and subsequent displacement of dimethylsulfide in the formation of hexametalladiborides featuring planar four-membered M\(_2\)B\(_2\) cores (M = Cu, Au) comparable to transition metal clusters constructed around four-membered rings composed solely of coinage metals. The analogies between compounds consisting of B\(_2\)M\(_2\) units and M\(_4\) (M = Cu, Au) units speak to the often overlooked metalloid nature of boron. Treatment of one of these compounds (M = Cu) with a Lewis-basic metal fragment (Pt(PCy\(_3\))\(_2\)) led to the formation of a tetrametallaboride featuring two manganese, one copper and one platinum atom, all bound to boron in a geometry not yet seen for this kind of compound. Computational examination suggests that this geometry is the result of d\(^{10}\)-d\(^{10}\) dispersion interactions between the copper and platinum fragments.
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