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Olefin Metathesis Polymerization: Ring-Opening Metathesis Polymerization (ROMP)01:16

Olefin Metathesis Polymerization: Ring-Opening Metathesis Polymerization (ROMP)

Ring-opening metathesis polymerization or ROMP involves strained cycloalkenes as starting materials. The mechanism of ROMP proceeds by reacting cycloalkene with Grubbs catalyst to give metallacyclobutane intermediate which undergoes a ring-opening reaction to form new carbene. The new carbene reacts with another molecule of cycloalkene. Repetition of these steps leads to the formation of an unsaturated open-chain polymer product. All these steps are reversible, however, relieving the ring...
Olefin Metathesis Polymerization: Overview01:13

Olefin Metathesis Polymerization: Overview

Recently, the development of olefin metathesis polymerization advanced the field of polymer synthesis. Simply put, the reorganization of substituents on their double bonds between two olefins in the presence of a catalyst is known as the olefin metathesis reaction. The use of metathesis reaction for polymer synthesis is called olefin metathesis polymerization.
Ruthenium-based Grubbs catalyst is the most commonly used catalyst for olefin metathesis polymerization. Grubbs catalyst consists of a...
Olefin Metathesis Polymerization: Acyclic Diene Metathesis (ADMET)00:53

Olefin Metathesis Polymerization: Acyclic Diene Metathesis (ADMET)

Acyclic diene metathesis polymerization or ADMET polymerization involves cross-metathesis of terminal dienes, such as 1,8-nonadiene, to give linear unsaturated polymer and ethylene. As ADMET is a reversible process, the formed ethylene gas must be removed from the reaction mixture to complete the polymerization process.
Similar to cross-metathesis, ADMET also involves the formation of metallacyclobutane intermediate by [2+2] cycloaddition of one of the double bonds of a terminal diene with...
Cationic Chain-Growth Polymerization: Mechanism00:57

Cationic Chain-Growth Polymerization: Mechanism

The cationic polymerization mechanism consists of three steps: initiation, propagation, and termination. In the initiation step of the polymerization process, the π bond of a monomer gets protonated by the Lewis acid catalyst, which is formed from boron trifluoride and water. The protonation of the π bond generates a carbocation stabilized by the electron‐donating group. In the propagation step, the π bond of the second monomer acts as a nucleophile and attacks the generated carbocation,...
Anionic Chain-Growth Polymerization: Overview01:20

Anionic Chain-Growth Polymerization: Overview

The polymerization process that involves carbanion as an intermediate is called anionic polymerization. It is also a type of addition or chain-growth polymerization. Anionic polymerization gets initiated by a strong nucleophile such as an organolithium or a Grignard reagent. The most commonly used initiator for anionic polymerization is butyl lithium. Monomers involved in anionic polymerization must possess a vinyl group bonded to one or two electron-withdrawing groups. For instance,...
Anionic Chain-Growth Polymerization: Mechanism01:04

Anionic Chain-Growth Polymerization: Mechanism

The mechanism for anionic chain-growth polymerization involves initiation, propagation, and termination steps. In the initiation step, a nucleophilic anion, such as butyl lithium, initiates the polymerization process by attacking the π bond of the vinylic monomer. As a result, a carbanion, stabilized by the electron‐withdrawing group, is generated. The resulting carbanion acts as a Michael donor in the propagation step and attacks the second vinylic monomer, which acts as a Michael acceptor.

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Updated: Jun 7, 2026

Depolymerizable Olefinic Polymers Based on Fused-Ring Cyclooctene Monomers
08:12

Depolymerizable Olefinic Polymers Based on Fused-Ring Cyclooctene Monomers

Published on: December 16, 2022

酸性ポリサッカリドは,リング開きメタテシスポリメリゼーションによるミミケーションを行います.

Michel Wathier1, Stephanie S Stoddart, Matthew J Sheehy

  • 1Department of Biomedical Engineering, Metcalf Center for Science and Engineering, Boston University, Boston, Massachusetts 02215, United States.

Journal of the American Chemical Society
|October 23, 2010
PubMed
まとめ

研究者らは,カルボキシル酸とヒドロキシル基を持つ高分子量水性ポリマーを作成するための新しい方法を開発しました. これらの炭水化物のようなポリマーは,バイオテクノロジーや医薬品における合成ポリサッカリドの代替品として有望を示しています.

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Controlled Photoredox Ring-Opening Polymerization of O-Carboxyanhydrides Mediated by Ni/Zn Complexes
05:48

Controlled Photoredox Ring-Opening Polymerization of O-Carboxyanhydrides Mediated by Ni/Zn Complexes

Published on: November 21, 2017

Self-assembling Morphologies Obtained from Helical Polycarbodiimide Copolymers and Their Triazole Derivatives
09:22

Self-assembling Morphologies Obtained from Helical Polycarbodiimide Copolymers and Their Triazole Derivatives

Published on: February 7, 2017

関連する実験動画

Last Updated: Jun 7, 2026

Depolymerizable Olefinic Polymers Based on Fused-Ring Cyclooctene Monomers
08:12

Depolymerizable Olefinic Polymers Based on Fused-Ring Cyclooctene Monomers

Published on: December 16, 2022

Controlled Photoredox Ring-Opening Polymerization of O-Carboxyanhydrides Mediated by Ni/Zn Complexes
05:48

Controlled Photoredox Ring-Opening Polymerization of O-Carboxyanhydrides Mediated by Ni/Zn Complexes

Published on: November 21, 2017

Self-assembling Morphologies Obtained from Helical Polycarbodiimide Copolymers and Their Triazole Derivatives
09:22

Self-assembling Morphologies Obtained from Helical Polycarbodiimide Copolymers and Their Triazole Derivatives

Published on: February 7, 2017

科学分野:

  • ポリマー化学のポリマー化学について
  • マテリアルサイエンス 材料科学
  • バイオテクノロジー バイオテクノロジー

背景:

  • 多様な機能群を持つ水性ポリマーは,バイオメディカルアプリケーションにおいて極めて重要です.
  • アルジナートなどの天然のポリサッカリドを模倣することは,合成ポリマー設計の重要な目標です.

研究 の 目的:

  • 高分子量ヒドロフィリックポリマーの効率的かつ一般的な合成戦略を開発する.
  • カーボキシル酸とヒドロキシルペンダントグループの両方を持つポリマーを作成するために.
  • 合成ポリサッカリドの代替品としての応用を探求する.

主な方法:

  • グラブス触媒IIを用いたメチル5-オキシノルボルネン-2-カルボキシラートのリング開きメタテシスポリメリゼーション (ROMP)
  • ハイドロキシルまたはカルボキシル酸の機能性を導入するために,ポリメリゼーション後の修正.
  • ポリマーの分子量 (∼100,000から5,000,000g/mol) の特徴.

主要な成果:

  • 高い分子量を持つポリ (5,6-ジヒドロキシオキサノールボナーネ・カルボキシル酸) を成功して合成した.
  • 機能群の導入を通じて,水害性/水性愛性の特性のチューニングが実証されています.
  • ポリリシンによるヒドロゲルの形成は,アルギナートの振る舞いを模倣する.

結論:

  • 記述された合成戦略は,機能的な水性ポリマーを生産するための効率的で一般的なものです.
  • これらの炭水化物のようなポリマーは,構造-性質関係の研究に価値があります.
  • これらのポリマーは,バイオテクノロジーや医薬品における新しい合成ポリサッカリドの代替品としての可能性を秘めています.