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関連する概念動画

Radical Reactivity: Electrophilic Radicals01:02

Radical Reactivity: Electrophilic Radicals

1.6K
Radicals adjacent to electron‐withdrawing groups are called electrophilic radicals. These radicals readily react with nucleophilic alkenes. For example, the malonate radical, in which the radical center is flanked by two electron‐withdrawing groups, reacts readily with butyl vinyl ether, which consists of an electron‐donating oxygen substituent. The reaction between electrophilic malonate radical and nucleophilic vinyl ether is favored because the radical has a...
1.6K
Radicals: Electronic Structure and Geometry01:07

Radicals: Electronic Structure and Geometry

4.1K
This lesson delves into the geometry of a radical, which is influenced by the electronic structure of the molecule. The principle is similar to that of a lone pair, where the unpaired electron influences the geometry at the radical center.
Accordingly, the structure of a trivalent radical lies between the geometries of carbocations and carbanions. An sp2-hybridized carbocation is trigonal planar, while an sp3-hybridized carbanion is trigonal pyramidal. Here, the difference in geometry is...
4.1K
Radical Reactivity: Steric Effects01:10

Radical Reactivity: Steric Effects

1.6K
The presence of electron-donating, electron-withdrawing, or conjugating groups adjacent to a radical center, imparts electronic stabilization to the radicals. Examples of such electronically-stabilized radicals are triphenylmethyl, tetramethylpiperidine‐N‐oxide, and 2,2‐diphenyl‐1‐picrylhydrazyl. These radicals are remarkably stable and are known as persistent radicals. Some of the persistent radicals can even be isolated and purified.
Along with electronic...
1.6K
Aromatic Hydrocarbon Anions: Structural Overview01:18

Aromatic Hydrocarbon Anions: Structural Overview

3.4K
Neutral hydrocarbons like cyclopentadiene with an odd number of carbon atoms and one intervening CH2 group in the ring are not aromatic. Cyclopentadiene with 4 π electrons does not satisfy the 4n + 2 π electron rule. Additionally, the intervening CH2 group is sp3 hybridized and lacks a vacant p orbital, thereby interrupting the overlap of p orbitals in a continuous manner and preventing the delocalization of π electrons throughout the ring.
Due to the absence of continuous...
3.4K
Radical Formation: Addition00:47

Radical Formation: Addition

1.6K
Radicals can be formed by adding a radical to a spin-paired molecule. This is typically observed with unsaturated species, where the addition of a radical across the π bond leads to the production of a new radical by dissolving the π bond. For example, the addition of a Br radical to an alkene yields a carbon-centered radical.
Similar to charge conservation in chemical reactions, spin conservation is implicit for radical reactions. Accordingly, the product formed must possess an...
1.6K
π Molecular Orbitals of the Allyl Radical01:27

π Molecular Orbitals of the Allyl Radical

2.8K
Allyl radicals are three-carbon conjugated systems. They are readily formed as intermediates in halogenation reactions of alkenes involving the addition of halogen to the allylic carbon instead of the double bond. As seen in allyl cations and anions, each of the three sp2-hybridized carbon atoms in allyl radicals has an unhybridized p orbital. These orbitals combine to give three π molecular orbitals.
The allyl systems have identical molecular orbitals but differ in the number of π...
2.8K

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Atom Transfer Radical Polymerization of Functionalized Vinyl Monomers Using Perylene as a Visible Light Photocatalyst
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Atom Transfer Radical Polymerization of Functionalized Vinyl Monomers Using Perylene as a Visible Light Photocatalyst

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結晶型フォスファルケンのラジカルアニオンである.

Xiaobo Pan1, Xingyong Wang, Yue Zhao

  • 1State Key Laboratory of Coordination Chemistry, School of Chemistry and Chemical Engineering, and ‡Centre of Modern Analysis, Nanjing University , Nanjing 210093, China.

Journal of the American Chemical Society
|July 1, 2014
PubMed
まとめ

研究者らは,新種のフォスファルケンのラジカルアニオンを合成し,特徴づけ,主にリン原子のスピン密度を明らかにしました. この画期的な発見は,結晶型フォスファルケンのラジカルアニオンを初めて分離したものである.

科学分野:

  • オーガノフォスファルス化学
  • ラジカルアニオン化学について
  • マテリアルサイエンス 材料科学

背景:

  • フォスファルケンは,リンと炭素の二重結合を含む不飽和化合物です.
  • ラジカルアニオンは,ペアリングされていない電子と負の電荷を持つ種であり,しばしばユニークな反応性を表します.
  • 安定系アニオンの分離と特徴づけは,電子伝送プロセスを理解し,新しい材料を開発するために不可欠です.

研究 の 目的:

  • 新しいフォスファルケネ基アニオンを合成し,特徴づけること.
  • これらのラジカルアニオン内の電子構造とスピン分布を調査するために.
  • フォスファルケンのラジカルアニオンの最初の結晶形を確立するために.

主な方法:

  • フォスファルケネ基アニオンを含む塩分を分離する.
  • 電子パラマグネティック共振 (EPR) スペクトロスコーピーは,根幹の特徴を決定する.
  • 電子トランジションのためのUV-VIS吸収スペクトロスコーピー.
  • 構造的決定のための単結晶X線 difraktion.
  • スピン密度分析のための理論的計算.

主要な成果:

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Isolating Free Carbenes, their Mixed Dimers and Organic Radicals

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From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
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From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding

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Isolating Free Carbenes, their Mixed Dimers and Organic Radicals
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Isolating Free Carbenes, their Mixed Dimers and Organic Radicals

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  • フォスファルケネ基アニオンの分離と特徴づけに成功した.
  • 構造分析は,中性前駆体と比較して,長引くP-C結合とフルフェン芳香化を明らかにした.
  • EPRスペクトル検査と理論的計算により,スピン密度が主に原子に局所されていることが確認されました.
  • この研究では,最初の結晶型フォスファルケンのラジカルアニオンが報告されています.
  • 結論:

    • リン基アニオンは,安定した結晶塩として分離することができる.
    • 電子構造は,スピン密度がを中心とした,有意なデロカライゼーションを伴う.
    • この研究は,リン基の過激アニオンの化学的性質と応用に関する新たな探求の道を開く.