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Vicinal Diols via Reductive Coupling of Aldehydes or Ketones: Pinacol Coupling Overview01:27

Vicinal Diols via Reductive Coupling of Aldehydes or Ketones: Pinacol Coupling Overview

Wilhelm Rudolph Fittig discovered the pinacol coupling reaction in 1859. It is a radical dimerization reaction and involves the reductive coupling of aldehydes or ketones in the presence of hydrocarbon solvent to yield vicinal diols.
Heterogeneous Catalysis01:22

Heterogeneous Catalysis

Heterogeneous catalysis involves a catalyst in a different phase from the reactants. It is a process where the catalyst and the reactants are in distinct phases, typically solid and gas or liquid.Most heterogeneous catalysts are metals, metal oxides, or acids. The list includes transition metals like iron (Fe), cobalt (Co), nickel (Ni), palladium (Pd), platinum (Pt), chromium (Cr), manganese (Mn), tungsten (W), silver (Ag), and copper (Cu). These metals possess partially vacant d orbitals that...
Alkenes via Reductive Coupling of Aldehydes or Ketones: McMurry Reaction01:22

Alkenes via Reductive Coupling of Aldehydes or Ketones: McMurry Reaction

The radical dimerization of ketones or aldehydes gives vicinal diols through a pinacol coupling reaction. However, the behavior of titanium metals used for the reaction as a source of electrons is unusual. When the reaction is carried out in the presence of titanium, diols can be isolated at low temperatures. Else titanium further reacts with diols, forming alkenes through the McMurry reaction.
Catalysis02:50

Catalysis

The presence of a catalyst affects the rate of a chemical reaction. A catalyst is a substance that can increase the reaction rate without being consumed during the process. A basic comprehension of a catalysts’ role during chemical reactions can be understood from the concept of reaction mechanisms and energy diagrams.
Catalysis01:27

Catalysis

Catalysis influences the rate of chemical reactions by providing an alternative reaction pathway with lower activation energy. A catalyst speeds up a reaction, but it is not consumed during the process. The fundamental principle of catalysis is the ability of a catalyst to alter the reaction mechanism, often introducing a more efficient pathway than the uncatalyzed process.In a catalyzed reaction, the catalyst participates directly in the reaction mechanism. It interacts with reactants to form...
Metal-Ligand Bonds02:51

Metal-Ligand Bonds

The hemoglobin in the blood, the chlorophyll in green plants, vitamin B-12, and the catalyst used in the manufacture of polyethylene all contain coordination compounds. Ions of the metals, especially the transition metals, are likely to form complexes.
In these complexes, transition metals form coordinate covalent bonds, a kind of Lewis acid-base interaction in which both of the electrons in the bond are contributed by a donor (Lewis base) to an electron acceptor (Lewis acid). The Lewis acid in...

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Updated: Jun 8, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
10:57

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction

Published on: April 10, 2018

A bimetallic iron(III) catalyst for CO2/epoxide coupling.

Antoine Buchard1, Michael R Kember, Karl G Sandeman

  • 1Department of Chemistry, Imperial College London, London, SW7 2AZ, UK.

Chemical Communications (Cambridge, England)
|September 28, 2010
PubMed
Summary

A new di-iron(III) catalyst efficiently copolymerizes cyclohexene oxide and CO2 into poly(cyclohexene carbonate) under mild conditions. Adding an ammonium co-catalyst shifts selectivity to exclusively produce the cis-isomer cyclic carbonate.

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Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production
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Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production

Published on: December 6, 2021

Versatile CO2 Transformations into Complex Products: A One-pot Two-step Strategy
07:36

Versatile CO2 Transformations into Complex Products: A One-pot Two-step Strategy

Published on: November 9, 2019

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Last Updated: Jun 8, 2026

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
10:57

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction

Published on: April 10, 2018

Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production
08:40

Synthesis of Metal Nanoparticles Supported on Carbon Nanotube with Doped Co and N Atoms and its Catalytic Applications in Hydrogen Production

Published on: December 6, 2021

Versatile CO2 Transformations into Complex Products: A One-pot Two-step Strategy
07:36

Versatile CO2 Transformations into Complex Products: A One-pot Two-step Strategy

Published on: November 9, 2019

Area of Science:

  • Catalysis
  • Polymer Chemistry
  • Organometallic Chemistry

Background:

  • Cyclic carbonates are valuable chemical intermediates.
  • Efficient synthesis of polycarbonates and cyclic carbonates is crucial.
  • CO2 utilization in polymer synthesis offers sustainability benefits.

Purpose of the Study:

  • To report a novel di-iron(III) catalyst for cyclohexene oxide and CO2 copolymerization.
  • To investigate the effect of an ammonium co-catalyst on reaction selectivity.
  • To explore the catalyst's activity for other epoxide substrates.

Main Methods:

  • Copolymerization of cyclohexene oxide and CO2 using a di-iron(III) catalyst.
  • Modification of catalyst selectivity with an ammonium co-catalyst.
  • Testing catalyst activity with propylene oxide and styrene oxide.

Main Results:

  • The di-iron(III) catalyst successfully produced poly(cyclohexene carbonate) under mild conditions.
  • Addition of an ammonium co-catalyst completely altered selectivity, yielding only the cis-isomer of the cyclic carbonate.
  • The catalyst demonstrated activity in producing propylene carbonate and styrene carbonate at 1 atm.

Conclusions:

  • A novel di-iron(III) catalyst enables mild and selective synthesis of poly(cyclohexene carbonate).
  • Ammonium co-catalysis provides a route to exclusively synthesize cis-cyclic carbonates.
  • The catalyst shows versatility for producing various cyclic carbonates.