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Properties of Organometallic Compounds01:23

Properties of Organometallic Compounds

994
Organometallic compounds are compounds that contain a carbon–metal bond. Carbon belongs to an organyl group like alkyl, aryl, allyl, or benzyl groups. The metal can be from Group I or Group II of the periodic table, a transition metal, or a semimetal.
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Resonance and Hybrid Structures02:16

Resonance and Hybrid Structures

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According to the theory of resonance, if two or more Lewis structures with the same arrangement of atoms can be written for a molecule, ion, or radical, the actual distribution of electrons is an average of that shown by the various Lewis structures.
Resonance Structures and Resonance Hybrids
The Lewis structure of a nitrite anion (NO2−) may actually be drawn in two different ways, distinguished by the locations of the N–O and N=O bonds.
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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...
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Molecular Orbital Theory II

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Molecular Orbital Energy Diagrams
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Exceptions to the Octet Rule

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Many covalent molecules have central atoms that do not have eight electrons in their Lewis structures. These molecules fall into three categories:
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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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Related Experiment Video

Updated: Jul 1, 2025

Synthesis of a Borylated Ibuprofen Derivative Through Suzuki Cross-Coupling and Alkene Boracarboxylation Reactions
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Boryls, their compounds and reactivity: a structure and bonding perspective.

Xueying Guo1, Zhenyang Lin1

  • 1Department of Chemistry, The Hong Kong University of Science and Technology Clear Water Bay Kowloon Hong Kong chzlin@ust.hk.

Chemical Science
|March 1, 2024
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Summary

Boryls are key in boron chemistry, offering diverse applications in materials science and catalysis. This study analyzes their structure, bonding, and reactivity, highlighting potential catalytic uses.

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Area of Science:

  • Organometallic Chemistry
  • Materials Science
  • Catalysis

Background:

  • Boryls and their compounds are crucial in modern chemistry.
  • Boron chemistry has seen significant research interest.
  • Boryls are integral to materials science and catalysis.

Purpose of the Study:

  • To provide an in-depth analysis of boryl compound reaction chemistry.
  • To explore boryls from a structure and bonding perspective.
  • To highlight the potential of boryls in catalytic applications.

Main Methods:

  • Analysis of reaction chemistry of boryl compounds.
  • Focus on structure and bonding properties.
  • Examination of nucleophilic and electrophilic characteristics.

Main Results:

  • Detailed discussion on the reactivity of boryls in transition metal complexes and diborane(4) compounds.
  • Exploration of boryl reactivity towards various substrates.
  • Insight into the nucleophilic and electrophilic behavior of boryls.

Conclusions:

  • Boryls exhibit unique properties stemming from their structure and bonding.
  • Understanding boryl reactivity is key to their application in catalysis.
  • Further research into boryls can unlock new catalytic processes.