multiple bonding
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Author(s):  
Rex C. Handford ◽  
Mark A. Nesbit ◽  
Patrick W. Smith ◽  
R. David Britt ◽  
T. Don Tilley

Nano Energy ◽  
2021 ◽  
pp. 106856
Author(s):  
Xin Yu ◽  
Yinhua Lv ◽  
Bingyan Xue ◽  
Lu Wang ◽  
Wanpei Hu ◽  
...  
Keyword(s):  

Author(s):  
Le-Shi Chen ◽  
Yun-Zhu Liu ◽  
Xiao-Na Li ◽  
Jiao-Jiao Chen ◽  
Gui-Duo Jiang ◽  
...  
Keyword(s):  

2021 ◽  
Author(s):  
Joel Gardner ◽  
Joseph Schneider ◽  
John Anderson

Late transition metal oxo and imide complexes play an important role in the catalytic functionalization and activation of small molecules. An emerging theme in this area over the past few decades has been the use of lower-coordination numbers, and pseudo-tetrahedral geometries in particular, to stabilize what would otherwise be highly reactive species. However, the bonding structure in d<sup>6</sup> oxo and imide complexes in this geometry is ambiguous. These species are typically depicted with a triple bond, however recent experimental evidence suggests significant empirical differences between these complexes and other triply bonded complexes with lower d-counts. Here we use a suite of computational orbital localization methods and electron density analyses to probe the bonding structure of isoelectronic d<sup>6</sup> Co(III) oxo and imide complexes. These analyses suggest that a triple bond description is inaccurate due to a dramatically weakened σ interaction. While the exact bond order in these cases is necessarily dependent on the model used, several metrics suggest that the strength of the metal–O/N bond is most similar to other formally doubly bonded complexes.


2021 ◽  
Author(s):  
Joel Gardner ◽  
Joseph Schneider ◽  
John Anderson

Late transition metal oxo and imide complexes play an important role in the catalytic functionalization and activation of small molecules. An emerging theme in this area over the past few decades has been the use of lower-coordination numbers, and pseudo-tetrahedral geometries in particular, to stabilize what would otherwise be highly reactive species. However, the bonding structure in d<sup>6</sup> oxo and imide complexes in this geometry is ambiguous. These species are typically depicted with a triple bond, however recent experimental evidence suggests significant empirical differences between these complexes and other triply bonded complexes with lower d-counts. Here we use a suite of computational orbital localization methods and electron density analyses to probe the bonding structure of isoelectronic d<sup>6</sup> Co(III) oxo and imide complexes. These analyses suggest that a triple bond description is inaccurate due to a dramatically weakened σ interaction. While the exact bond order in these cases is necessarily dependent on the model used, several metrics suggest that the strength of the metal–O/N bond is most similar to other formally doubly bonded complexes.


2021 ◽  
Vol 79 (8) ◽  
pp. 986
Author(s):  
Bin Li ◽  
Jipan Yu ◽  
Kang Liu ◽  
Qunyan Wu ◽  
Qi Liu ◽  
...  

2021 ◽  
Vol 50 (6) ◽  
pp. 2083-2092
Author(s):  
Erik T. Ouellette ◽  
Ambre Carpentier ◽  
I. Joseph Brackbill ◽  
Trevor D. Lohrey ◽  
Iskander Douair ◽  
...  

Salt metathesis reactions between a low-valent rhenium(i) complex and a series of amidinate-supported tetrylenes led to rhenium metallotetrylenes with varying extents of Re–E multiple bonding.


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