Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Alkene Isomerization using a Heterogeneous Nickel-Hydride Catalyst

View through CrossRef
Transition metal-catalyzed alkene isomerization is an enabling technology used to install an alkene distal to its original site. Due to their well-defined structure, homogeneous catalysts can be fine-tuned to optimize reactivity, stereoselectivity, and positional selectivity, but they often suffer from instability and non-recyclability. Heterogeneous catalysts are generally highly robust but continue to lack active-site specificity and are challenging to rationally improve through structural modification. Known single-site heterogeneous catalysts for alkene isomerization utilize precious metals and bespoke, expensive, and synthetically intense supports. Additionally, they generally have mediocre reactivity, inspiring us to develop a heterogeneous catalyst with an active site made from readily available compounds made of Earth-abundant elements. Previous work demonstrated that a very active homogeneous catalyst is formed upon protonation of Ni[P(OEt)3]4 by H2SO4, generating a [Ni–H]+ active site. This catalyst is incredibly active, but also decomposes readily, which severely limits its utility. Herein we show that by using a solid acid (sulfated zirconia, SZO300), not only is this de-composition prevented, but high activity is maintained, improved selectivity is achieved, and a broader scope of functional groups is tolerated. Preliminary mechanistic experiments suggest that the catalytic reaction likely goes through an intermolecular, two-electron pathway. A detailed kinetic study comparing the state-of-the-art Ni and Pd isomerization catalysts reveals that the highest activity and selectivity is seen with the Ni/SZO300 system. The reactivity of Ni/SZO300, is not limited to alkene isomerization; it is also a competent catalyst for hydroalkenylation, hydroboration, and hydrosilylation, demonstrating the broad application of this heterogeneous catalyst.
Title: Alkene Isomerization using a Heterogeneous Nickel-Hydride Catalyst
Description:
Transition metal-catalyzed alkene isomerization is an enabling technology used to install an alkene distal to its original site.
Due to their well-defined structure, homogeneous catalysts can be fine-tuned to optimize reactivity, stereoselectivity, and positional selectivity, but they often suffer from instability and non-recyclability.
Heterogeneous catalysts are generally highly robust but continue to lack active-site specificity and are challenging to rationally improve through structural modification.
Known single-site heterogeneous catalysts for alkene isomerization utilize precious metals and bespoke, expensive, and synthetically intense supports.
Additionally, they generally have mediocre reactivity, inspiring us to develop a heterogeneous catalyst with an active site made from readily available compounds made of Earth-abundant elements.
Previous work demonstrated that a very active homogeneous catalyst is formed upon protonation of Ni[P(OEt)3]4 by H2SO4, generating a [Ni–H]+ active site.
This catalyst is incredibly active, but also decomposes readily, which severely limits its utility.
Herein we show that by using a solid acid (sulfated zirconia, SZO300), not only is this de-composition prevented, but high activity is maintained, improved selectivity is achieved, and a broader scope of functional groups is tolerated.
Preliminary mechanistic experiments suggest that the catalytic reaction likely goes through an intermolecular, two-electron pathway.
A detailed kinetic study comparing the state-of-the-art Ni and Pd isomerization catalysts reveals that the highest activity and selectivity is seen with the Ni/SZO300 system.
The reactivity of Ni/SZO300, is not limited to alkene isomerization; it is also a competent catalyst for hydroalkenylation, hydroboration, and hydrosilylation, demonstrating the broad application of this heterogeneous catalyst.

Related Results

Alkene Isomerization using a Heterogeneous Nickel-Hydride Catalyst
Alkene Isomerization using a Heterogeneous Nickel-Hydride Catalyst
Transition metal-catalyzed alkene isomerization is an enabling technology used to install an alkene distal to its original site. Due to their well-defined structure, homogeneous ca...
Zirconium Hydride Precipitation and Dissolution Kinetics in Zirconium Alloys
Zirconium Hydride Precipitation and Dissolution Kinetics in Zirconium Alloys
Hydride precipitation may impact the integrity of zirconium-based nuclear fuel cladding, both during normal operation and during extended dry storage. To better understand such deg...
Alkene Reactions: The Dabdoub/Baroni Synthesis of ( ± )-Dihydroactinidiolide
Alkene Reactions: The Dabdoub/Baroni Synthesis of ( ± )-Dihydroactinidiolide
David B. Cordes of Pacific University reported (Tetrahedron Lett. 2009, 50, 1817) a simple combination of NaBH4 and Pd/C that reduced the alkene 1 to 2. This could be particularly ...
Theoretical Study on the Transfer Hydrogenation of Alkynes Using Ethanol Catalyzed by a NCP Pincer Iridium Complex
Theoretical Study on the Transfer Hydrogenation of Alkynes Using Ethanol Catalyzed by a NCP Pincer Iridium Complex
The reaction mechanism of Ir(NCP)-catalyzed stereoselective hydrogenation of alkyne to alkenes with ethanol as a hydrogen source was investigated via density functional theory (DFT...
SYNTHESIS AND RESEARCH OF CATALYTIC SYSTEMS FOR PENTANE ISOMERIZATION PROCESS
SYNTHESIS AND RESEARCH OF CATALYTIC SYSTEMS FOR PENTANE ISOMERIZATION PROCESS
This article presents the synthesis and comparative investigation of various catalytic systems for the isomerization of n-pentane, which belongs to the alkane group. The main objec...
Isomerization – Industrial
Isomerization – Industrial
Abstract The industrial practice of isomerization of hydrocarbons is discussed, with focus on economic motivation, selection of catalysts, processing conditi...
Catalytic, contra-Thermodynamic Alkene Isomerization
Catalytic, contra-Thermodynamic Alkene Isomerization
The positional isomerization of C–C double bonds is a powerful strategy for the interconversion of alkene regioisomers. However, existing methods provide access to thermodynamicall...
Asymmetric Alkene Isomerization Approach to C4-Substituted Piperidines
Asymmetric Alkene Isomerization Approach to C4-Substituted Piperidines
Chiral C4-substituted piperidines are prominent motifs in pharmaceuticals, agrochemicals, and alkaloid natural products, yet broadly applicable strategies for their asymmetric synt...

Back to Top