Synthesis and Characterization of Nickel Compounds with Tetradentate Thiolate–Thioether Ligands as Precursors for [NiFe]–Hydrogenase Models
Author:
Affiliation:
1. Max Planck Institute for Chemical Energy Conversion, Stiftstrasse 34–36, 45470 Mülheim an der Ruhr, Germany, http://www.cec.mpg.de
Publisher
Wiley
Subject
Inorganic Chemistry
Link
https://onlinelibrary.wiley.com/doi/pdf/10.1002/ejic.201301223
Reference43 articles.
1. Occurrence, Classification, and Biological Function of Hydrogenases: An Overview
2. Structural and Functional Analogues of the Active Sites of the [Fe]-, [NiFe]-, and [FeFe]-Hydrogenases
3. Thiolate‐Bridged Iron–Nickel Models for the Active Site of [NiFe] Hydrogenase
4. Structure/Function Relationships of [NiFe]- and [FeFe]-Hydrogenases
5. [NiFe] hydrogenases: structural and spectroscopic studies of the reaction mechanism
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1. Steric Enforcement about One Thiolate Donor Leads to New Oxidation Chemistry in a NiSOD Model Complex;Inorganic Chemistry;2017-05-01
2. Electrocatalytic proton reduction by a model for [NiFeSe] hydrogenases;Dalton Transactions;2017
3. Nickel–ruthenium-based complexes as biomimetic models of [NiFe] and [NiFeSe] hydrogenases for dihydrogen evolution;Dalton Trans.;2017
4. Reactivity of a Monomeric Aluminium Hydrazide towards Isocyanates and Isothiocyanates: Active Lewis Pair Behaviour versus Classical Insertion Reactions;European Journal of Inorganic Chemistry;2016-04-19
5. Modeling the Active Site of [NiFe] Hydrogenases and the [NiFeu] Subsite of the C-Cluster of Carbon Monoxide Dehydrogenases: Low-Spin Iron(II) Versus High-Spin Iron(II);Inorganic Chemistry;2014-06-06
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