Jove
Visualize
お問い合わせ
JoVE
x logofacebook logolinkedin logoyoutube logo
JoVEについて
概要リーダーシップブログJoVEヘルプセンター
著者向け
出版プロセス編集委員会範囲と方針査読よくある質問投稿
図書館員向け
推薦の声購読アクセスリソース図書館諮問委員会よくある質問
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experimentsアーカイブ
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教員リソースセンター教員サイト
利用規約
プライバシーポリシー
ポリシー

関連する概念動画

Nucleophilic Aromatic Substitution: Elimination–Addition01:11

Nucleophilic Aromatic Substitution: Elimination–Addition

Simple aryl halides do not react with nucleophiles. However, nucleophilic aromatic substitutions can be forced under certain conditions, such as high temperatures or strong bases. The mechanism of substitution under such conditions involves the highly unstable and reactive benzyne intermediate. Benzyne contains equivalent carbon centers at both ends of the triple bond, each of which is equally susceptible to nucleophilic attack. This 50–50 distribution of products is confirmed through isotopic...
Elimination Reactions02:25

Elimination Reactions

A nucleophile can react with an alkyl halide to give the substitution product by displacing the halogen. Or it can function as a base to give the elimination product by deprotonation of the neighboring carbon to form an alkene. In an elimination reaction, the substrate loses two groups from adjacent carbons forming at least one π bond. The carbon attached to the halogen is called the α carbon, while the adjacent carbon is called the β carbon; hence, these reactions are called β elimination or...
Electrophilic Aromatic Substitution: Chlorination and Bromination of Benzene01:15

Electrophilic Aromatic Substitution: Chlorination and Bromination of Benzene

Chlorination and bromination are important classes of electrophilic aromatic substitutions, where benzene reacts with chlorine or bromine in the presence of a Lewis acid catalyst to give halogenated substitution products. A Lewis acid such as aluminium chloride or ferric chloride catalyzes the chlorination, and ferric bromide catalyzes the bromination reactions. During the bromination of alkenes, bromine polarizes and becomes electrophilic. However, in the bromination of benzene, the bromine...
E1 Reaction: Kinetics and Mechanism02:46

E1 Reaction: Kinetics and Mechanism

Here, in contrast to the E2 reaction mechanism, we delve into the aspects of the E1 reaction mechanism, which has two steps: rate-limiting loss of the leaving group and abstraction of the beta hydrogen by a weak base. Typically, the experimental proof for the E1 mechanism is via kinetic studies or isotope studies. While the former demonstrates the first-order kinetics—the dependence of the reaction solely on substrate concentration—the latter proves the abstraction of hydrogen only in the...
Nitriles to Amines: LiAlH4 Reduction00:55

Nitriles to Amines: LiAlH4 Reduction

Nitriles are reduced to amines in the presence of strong reducing agents like lithium aluminum hydride through a typical nucleophilic acyl substitution. The reaction requires two equivalents of the reducing agent. The reducing agent acts as a source of hydride ions.
As shown below, the mechanism involves three steps. Firstly, the hydride ion acting as a nucleophile attacks the nitrile carbon to form an anion. In the second step, a second equivalent of the hydride ion attacks the anion to...
E2 Reaction: Kinetics and Mechanism02:45

E2 Reaction: Kinetics and Mechanism

SN2 substitutions and E2 eliminations of alkyl halides proceed via a concerted pathway. While the nucleophile attacks the alpha carbon in SN2 reactions, it functions as a strong base and abstracts a beta hydrogen in the E2 mechanism. The rate-limiting transition state in E2 elimination reactions is characterized by partially broken carbon–hydrogen and carbon–halogen bonds and a partially formed pi bond between the alpha and beta carbons. The beta hydrogen and halide are eliminated...

こちらも読む

関連記事

共著者、ジャーナル、引用グラフによってこの研究に関連する記事。

並び替え
Same author

Tuneable electronic coupling in linked bis(cubane) cobalt-oxo clusters.

Chemical science·2026
Same author

Mixed-Valent Tetracopper Disulfides Supported by a 1,8-Naphthyridine-Based Ligand: Models for Electronic Communication in Biological Copper Systems.

Journal of the American Chemical Society·2026
Same author

Nitrile RC≡N Triple Bond Cleavage by a Dicopper Nitrite Complex with N<sub>2</sub> Elimination and Formation of RCO<sub>2</sub><sup>-</sup> Carboxylate Ligands.

Journal of the American Chemical Society·2026
Same author

Celebrating 25 Years of Scientific Discoveries in Organic and Inorganic Chemistry Supported by the ACS Petroleum Research Fund.

Inorganic chemistry·2025
Same author

Attractive Noncovalent Interactions versus Steric Confinement in Asymmetric Supramolecular Catalysis.

Journal of the American Chemical Society·2025
Same author

Dynamically Chiral Expanded Helicenes.

Journal of the American Chemical Society·2025

関連する実験動画

Updated: May 10, 2026

Characterizing Lewis Pairs Using Titration Coupled with In Situ Infrared Spectroscopy
07:49

Characterizing Lewis Pairs Using Titration Coupled with In Situ Infrared Spectroscopy

Published on: February 20, 2020

リモートルイス酸トリガーは,プラチナ複合体からのビアリル還元性除去を劇的に加速します.

Allegra L Liberman-Martin1, Robert G Bergman, T Don Tilley

  • 1Department of Chemistry, University of California - Berkeley, Berkeley, California 94720, USA.

Journal of the American Chemical Society
|June 25, 2013
PubMed
まとめ

この研究は,遠隔化学スイッチを使用して金属センターの電子密度を制御する新しい方法を紹介しています. このアプローチは,重要な化学反応であるビアリル還元性除去を 64,000 倍以上大幅に加速します.

科学分野:

  • 有機金属化学 有機金属化学
  • 協調化化学について
  • カタリシス カタリシス カタリシス

背景:

  • 金属中心の電子密度を制御することは,チューニング反応性にとって極めて重要です.
  • 第2の領域の相互作用は,第1の協調領域に影響を与えるための経路を提供します.
  • プラチナ ((II) 複合体は,触媒と材料科学において重要である.

研究 の 目的:

  • 金属センターの遠隔電子制御のための戦略を開発する.
  • ルイス酸の結合がプラチナ複合体の反応性に及ぼす影響を調査する.
  • ビアリル還元性除去の速度を高めるために.

主な方法:

  • ビピラジン-ダイアリルプラチナ (II) 複合体の合成
  • ルイス酸結合 (B(C6F5)3) を含む遠隔化学スイッチを使用する.
  • 反応速度を測定するための運動学的研究.

主要な成果:

  • 第2球のルイス酸結合による電子密度の成功調節が実証された.
  • ビアリル還元性排出の有意な加速が64,000の因数で観察されました.
  • 金属中心の反応性を制御するための堅固な方法を確立した.

さらに関連する動画

A Protocol for Safe Lithiation Reactions Using Organolithium Reagents
09:45

A Protocol for Safe Lithiation Reactions Using Organolithium Reagents

Published on: November 12, 2016

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

関連する実験動画

Last Updated: May 10, 2026

Characterizing Lewis Pairs Using Titration Coupled with In Situ Infrared Spectroscopy
07:49

Characterizing Lewis Pairs Using Titration Coupled with In Situ Infrared Spectroscopy

Published on: February 20, 2020

A Protocol for Safe Lithiation Reactions Using Organolithium Reagents
09:45

A Protocol for Safe Lithiation Reactions Using Organolithium Reagents

Published on: November 12, 2016

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

結論:

  • リモートルイス酸結合は,金属センターの電子制御のための効果的な戦略です.
  • この方法は,有機金属複合体の反応速度の前例のない制御を提供します.
  • この発見は,触媒の設計と開発に影響を及ぼします.