Antimony diiminopyridine complexes
Author:
Affiliation:
1. Baylor University, Department of Chemistry and Biochemistry, One Bear Place #97348, Waco, TX 76798, USA
2. La Trobe University, La Trobe Institute for Molecular Science, Department of Chemistry and Physics, Melbourne, VIC, 3086, Australia
Abstract
Funder
Welch Foundation
National Science Foundation
Australian Research Council
Publisher
Royal Society of Chemistry (RSC)
Subject
Inorganic Chemistry
Link
http://pubs.rsc.org/en/content/articlepdf/2021/DT/D1DT02085D
Reference59 articles.
1. Complexes of Iron(II), Cobalt(II) and Nickel(II) with Biacetyl-bis-methylimine, 2-Pyridinal-methylimine and 2,6-Pyridindial-bis-methylimine
2. Highly Active Iron and Cobalt Catalysts for the Polymerization of Ethylene
3. Bis(imino)pyridines: Surprisingly Reactive Ligands and a Gateway to New Families of Catalysts
4. Structural characteristics of redox-active pyridine-1,6-diimine complexes: Electronic structures and ligand oxidation levels
5. Metal–Ligand Electron Transfer in 4d and 5d Group 9 Transition Metal Complexes with Pyridine, Diimine Ligands
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1. Coordination Chemistry of the Antimony(III) and Bismuth(III) Cations using Bis(α‐iminopyridine) as Ligand;ChemPlusChem;2023-07
2. Recent Progress in the Main Group Complexes with the 2,6-Pyridinediimine;Chinese Journal of Organic Chemistry;2023
3. Utilizing bis(imino)dihydroacridanide pincer ligands in p-block chemistry: synthesis and catalysis of an antimony monocation salt;Dalton Transactions;2023
4. The reactivity of antimony and bismuth N,C,N-pincer compounds toward K[BEt3H] – the formation of heterocyclic compounds vs. element–element bonds vs. stable terminal Sb–H bonds;Dalton Transactions;2023
5. Investigating the Reactions of BiCl3, a Diiminopyridine Ligand, and Trimethylsilyl Trifluoromethanesulfonate;Organometallics;2022-05-03
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