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Hydroboration-Oxidation of Alkenes03:08

Hydroboration-Oxidation of Alkenes

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In addition to the oxymercuration–demercuration method, which converts the alkenes to alcohols with Markovnikov orientation, a complementary hydroboration-oxidation method yields the anti-Markovnikov product. The hydroboration reaction, discovered in 1959 by H.C. Brown, involves the addition of a B–H bond of borane to an alkene giving an organoborane intermediate. The oxidation of this intermediate with basic hydrogen peroxide forms an alcohol.
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Regioselectivity and Stereochemistry of Hydroboration02:36

Regioselectivity and Stereochemistry of Hydroboration

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A significant aspect of hydroboration–oxidation is the regio- and stereochemical outcome of the reaction.
Hydroboration proceeds in a concerted fashion with the attack of borane on the π bond, giving a cyclic four-centered transition state. The –BH2 group is bonded to the less substituted carbon and –H to the more substituted carbon. The concerted nature requires the simultaneous addition of –H and –BH2 across the same face of the alkene giving syn...
8.0K
Alcohols from Carbonyl Compounds: Reduction02:23

Alcohols from Carbonyl Compounds: Reduction

10.2K
Reduction is a simple strategy to convert a carbonyl group to a hydroxyl group. The three major pathways to reduce carbonyls to alcohols are catalytic hydrogenation, hydride reduction, and borane reduction.
Catalytic hydrogenation is similar to the reduction of an alkene or alkyne by adding H2 across the pi bond in the presence of transition metal catalysts like Raney Ni, Pd–C, Pt, or Ru. Aldehydes and ketones can be reduced by this method, often under mild to moderate heat (25–100°C) and...
10.2K
Valence Bond Theory02:42

Valence Bond Theory

8.4K
Coordination compounds and complexes exhibit different colors, geometries, and magnetic behavior, depending on the metal atom/ion and ligands from which they are composed. In an attempt to explain the bonding and structure of coordination complexes, Linus Pauling proposed the valence bond theory, or VBT, using the concepts of hybridization and the overlapping of the atomic orbitals. According to VBT, the central metal atom or ion (Lewis acid) hybridizes to provide empty orbitals of suitable...
8.4K
Benzene to 1,4-Cyclohexadiene: Birch Reduction Mechanism01:18

Benzene to 1,4-Cyclohexadiene: Birch Reduction Mechanism

2.2K
Birch reduction uses solvated electrons as reducing agents. The reaction converts benzene to 1,4-cyclohexadiene. The reaction proceeds by the transfer of a single electron to the ring to form a benzene radical anion. This anion is highly basic—it abstracts a proton from the alcohol to form a cyclohexadienyl radical. Another single electron transfer gives the cyclohexadienyl anion. A proton transfer from the alcohol forms 1,4-cyclohexadiene. Since this reduction occurs via radical anion...
2.2K
Metal-Ligand Bonds02:51

Metal-Ligand Bonds

20.5K
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 3, 2025

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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CO2 Reduction at a Borane-Modified Iron Complex: A Secondary Coordination Sphere Strategy.

Connor S Durfy1, Joseph A Zurakowski1,2, Marcus W Drover1

  • 1Department of Chemistry, Western University, 1151 Richmond Street, London, ON, N8K 3G6, Canada.

Angewandte Chemie (International Ed. in English)
|January 8, 2025
PubMed
Summary

This study reveals that incorporating Lewis acids into organometallic complexes significantly enhances carbon dioxide (CO2) reduction. These modified catalysts also enable selective aldehyde reduction, showcasing metal-ligand cooperation for challenging transformations.

Keywords:
boroncarbon dioxide reductionironligand designmetal-ligand cooperativity

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Area of Science:

  • Organometallic Chemistry
  • Catalysis
  • Sustainable Chemistry

Background:

  • Secondary coordination sphere interactions are crucial for catalytic activity.
  • Organometallic iron complexes with hydride ligands are effective models for studying CO2 reduction.
  • Lewis acids can activate substrates and influence catalytic pathways.

Purpose of the Study:

  • To investigate the impact of intramolecularly positioned Lewis acids on CO2 reduction by iron hydride complexes.
  • To explore the cooperative reactivity between Lewis acids and metal centers in catalysis.
  • To understand the role of borane incorporation in enhancing catalyst performance and selectivity.

Main Methods:

  • Synthesis of derivatized iron hydride complexes with intramolecular borane units.
  • Reactivity studies involving carbon dioxide (CO2) and aldehyde reduction.
  • Control experiments to assess the necessity of borane functionalization.
  • Mechanistic investigations to elucidate reaction pathways and catalyst stability.

Main Results:

  • Borane incorporation is essential for CO2 transformation into reduced products.
  • The hybridization and substituents on the borane moiety influence reactivity.
  • Catalyst longevity is significantly affected by carbonyl substrate interactions.
  • Borane-containing complexes demonstrate chemoselective reduction of aldehydes over alkenes.

Conclusions:

  • Metal-ligand cooperative design strategies are effective for carbonyl reduction.
  • Intramolecularly positioned Lewis acids offer versatile pathways for challenging chemical transformations.
  • Functionalized organometallic complexes show promise for sustainable CO2 utilization and selective reductions.