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関連する概念動画

Radical Chain-Growth Polymerization: Mechanism01:09

Radical Chain-Growth Polymerization: Mechanism

The radical chain-growth polymerization mechanism consists of three steps: initiation, propagation, and termination of polymerization. The polymerization initiates when a free radical generated from the radical initiator adds to the unsaturated bond in the monomer. The unpaired electron of the free radical and one π electron in the unsaturated bond creates a σ bond between the free radical and the monomer. As a result, the other π electron in the unsaturated bond converts this species into the...
Radical Chain-Growth Polymerization: Overview01:10

Radical Chain-Growth Polymerization: Overview

Chain-growth or addition polymerization is successive addition reactions of monomers with a polymer chain. In radical chain-growth polymerization, the reaction proceeds via a free-radical intermediate. The free radical is formed from radical initiators, which spontaneously generate free radicals by homolytic fission. Organic peroxides (such as dibenzoyl peroxide, as shown in Figure 1) or azo compounds are popular radical initiators. A low concentration ratio of radical initiator to monomer is...
Radical Chain-Growth Polymerization: Chain Branching01:17

Radical Chain-Growth Polymerization: Chain Branching

The skeletal structure of polymers synthesized via radical polymerization is always branched. For example, the polymerization of ethylene by radical polymerization results in a low-density grade of polyethylene with a heavily branched skeletal structure. Here, the radical site abstracts hydrogen from the growing chain, and the radical site shifts from the end (a primary carbon center) to anywhere within the growing chain (a secondary carbon center). Consequently, the part of the chain from the...
Free-Radical Chain Reaction and Polymerization of Alkenes02:35

Free-Radical Chain Reaction and Polymerization of Alkenes

The conversion of alkenes to macromolecules called polymers is a reaction of high commercial importance. The structure of the polymer is defined by a repeating unit, while the terminal groups are considered insignificant. The average degree of polymerization represents the number of repeating units in the polymer molecule and is denoted by the subscript n.
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,...
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...

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関連する実験動画

Updated: May 28, 2026

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization
07:28

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization

Published on: February 18, 2022

平面基板からの同時の大量および表面主導の制御された根性ポリメリゼーション.

Salomon Turgman-Cohen1, Jan Genzer

  • 1Department of Chemical and Biomolecular Engineering, North Carolina State University, Raleigh, North Carolina 27695, United States.

Journal of the American Chemical Society
|October 8, 2011
PubMed
まとめ

モンテカルロシミュレーションでは,大量ポリメリゼーションがより速く,表面誘発ポリメリゼーションよりも分子量分布が狭いポリマーを生成することを明らかにしています. 表面ポリメリゼーション率は,イニシアター密度に依存し,ポリマー接合密度に関する一般的な仮定を無効にします.

科学分野:

  • ポリマー化学のポリマー化学について
  • 表面科学とは,地表科学である.
  • コンピューティング・ケミストリー

背景:

  • 制御された根性ポリメリゼーションは,定義された性質を持つポリマーを合成するために不可欠です.
  • 表面誘発ポリメリゼーションは,ポリマーブラシや機能化された表面の作成を可能にします.
  • 表面結合ポリマーの正確な特徴付けは,それらのアプリケーションにとって不可欠です.

研究 の 目的:

  • 大量溶液と平面から制御された急性ポリメリゼーションの違いを調査する.
  • 表面誘発ポリメリゼーション率に影響を与える要因を決定する.
  • 大量生産されたポリマーと表面生産されたポリマーの分子量が等しいという仮定に異議を唱えるため.

主な方法:

  • モンテカルロのコンピューターシミュレーションが採用されました.
  • シミュレーションでは,溶液と不浸透な平らな表面から同時にポリメリゼーションをモデル化しました.
  • 表面上のイニシアターサイト密度の変動も考慮した.

主要な成果:

  • 散発ポリマーは,表面開始ポリマーと比較して,より速い成長率とより狭い分子量分布を示した.
  • 表面誘発ポリメリゼーションの速度は,誘発部位の密度に依存することが判明した.

さらに関連する動画

Atom Transfer Radical Polymerization of Functionalized Vinyl Monomers Using Perylene as a Visible Light Photocatalyst
06:49

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

Published on: April 22, 2016

Fabricating Complex Culture Substrates Using Robotic Microcontact Printing (R-&#181;CP) and Sequential Nucleophilic Substitution
08:23

Fabricating Complex Culture Substrates Using Robotic Microcontact Printing (R-µCP) and Sequential Nucleophilic Substitution

Published on: October 31, 2014

関連する実験動画

Last Updated: May 28, 2026

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization
07:28

3D Printing and In Situ Surface Modification via Type I Photoinitiated Reversible Addition-Fragmentation Chain Transfer Polymerization

Published on: February 18, 2022

Atom Transfer Radical Polymerization of Functionalized Vinyl Monomers Using Perylene as a Visible Light Photocatalyst
06:49

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

Published on: April 22, 2016

Fabricating Complex Culture Substrates Using Robotic Microcontact Printing (R-&#181;CP) and Sequential Nucleophilic Substitution
08:23

Fabricating Complex Culture Substrates Using Robotic Microcontact Printing (R-µCP) and Sequential Nucleophilic Substitution

Published on: October 31, 2014

  • 大量生産されたポリマーの分子量と表面栽培されたポリマーの分子量との間に大きな不一致が観察されました.
  • 結論:

    • 表面発射ポリマーの分子量と散発ポリマーの分子量が等しいという仮定は,一般的に無効です.
    • この発見は,表面結合ポリマーシステムにおける接合密度の正確な決定に意味を持つ.
    • これらの違いを理解することは,高度なポリマー材料の設計と特徴付けの鍵です.