Balancing Steric and Electronic Effects in Carbonyl–Phosphine Molybdacarboranes
Author:
Affiliation:
1. Institute of Chemical Sciences Heriot‐Watt University EH14 4AS Edinburgh UK
Funder
Leverhulme Trust
Publisher
Wiley
Subject
Inorganic Chemistry
Link
https://onlinelibrary.wiley.com/doi/pdf/10.1002/ejic.201700492
Reference43 articles.
1. Molecular-orbital studies on carbametallaboranes. Part 1. Icosahedral carbaplatinaborane polyhedra
2. Molecular and crystal structure of 3,3-bis(triethylphosphine)-1,2-di-carba-3-platinadodecaborane(11), and molecular-orbital analysis of the ‘slip’ distortion in carbametallaboranes
3. Metallaborane chemistry. Part II. Molecular and crystal structure of 1,1 -bis(dimethylphenylphosphine)-2,4-dimethyl-2,4-dicarba-1-platina-closo-dodecaborane
4. Metallaborane chemistry. Part 11. Lower rotational barriers in seven-vertex than in twelve-vertex carbaplatinaboranes: synthesis, and molecular and crystal structures of [closo-1,1-(Et3P)2-2,3-Me2-1,2,3-PtC2B4H4] and [closo-1,1-(Et3P)2-1,2,4-PtC2B4H6]
5. closo-Carbametallaboranes from direct insertion into nido-carbaboranes: the molecular structures of [6,6-(Et3P)2-1,2,6-C2CoB7H9] and [1,1-(Et3P)2-1,2,4-CoC2B8H10]
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1. Polyhedral Metallaboranes and Metallacarboranes;Comprehensive Organometallic Chemistry IV;2022
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3. Spectroscopic and Electronic Properties of Molybdacarborane Complexes with Non‐innocently Acting Ligands;Chemistry – A European Journal;2019-05-30
4. Mixed-ligand (triphenylphosphine)ruthenium complexes of diphenylcarborane by ligand manipulation and an asymmetric, bimolecular “symbiotic” cluster;Journal of Organometallic Chemistry;2018-06
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