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相关概念视频

Polymer Classification: Crystallinity01:21

Polymer Classification: Crystallinity

2.7K
Unlike ionic or small covalent molecules, polymers do not form crystalline solids due to the diffusion limitations of their long-chain structures. However, polymers contain microscopic crystalline domains separated by amorphous domains.
Crystalline domains are the regions where polymer chains are aligned in an orderly manner and held together in proximity by intermolecular forces. For example, chains in the crystalline domains of polyethylene and nylon are bound together by van der Waals...
2.7K
Step-Growth Polymerization: Overview01:03

Step-Growth Polymerization: Overview

3.3K
Step-growth or condensation polymerization is a stepwise reaction of bi or multifunctional monomers to form long-chain polymers. As all the monomers are reactive, most of the monomers are consumed at the early stages of the reaction to form small chains of reactive oligomers, which then combine to form long polymer chains in the late stages. Hence, the reaction has to proceed for a long time to achieve high molecular weight polymers.
Many natural and synthetic polymers are produced by...
3.3K
Ziegler–Natta Chain-Growth Polymerization: Overview01:17

Ziegler–Natta Chain-Growth Polymerization: Overview

3.2K
Ziegler–Natta polymerization is another form of addition or chain‐growth polymerization used for synthesizing linear polymers over branched polymers. The catalyst used for polymerization is the Ziegler–Natta catalyst, named after Karl Ziegler and Giulio Natta, who developed it in 1953. This catalyst is an organometallic complex of titanium tetrachloride and triethyl aluminum, with the active form of the catalyst being an alkyl titanium compound. Using the Ziegler–Natta...
3.2K
Polymer Classification: Stereospecificity01:26

Polymer Classification: Stereospecificity

2.3K
Polymerization generates chiral centers along the entire backbone of a polymer chain. Accordingly, the stereochemistry of the substituent group has a significant effect on polymer properties. Polymers formed from monosubstituted alkene monomers feature chiral carbons at every alternate position in the polymer backbone. Relative to the predominant orientation of substituents at the adjacent chiral carbons, the polymer can exist in three different configurations: isotactic, syndiotactic, and...
2.3K
Polymers02:34

Polymers

33.9K
The word polymer is derived from the Greek words “poly” which means “many” and “mer” which means “parts”. Polymers are long chains of molecules composed of repeating units of smaller molecules, known as monomers. They either occur naturally, such as DNA and proteins, or can be constructed synthetically, like plastics. They have varied structural characteristics, such as linear chains, branched chains, or complex networks, that contribute to the...
33.9K
Molecular Weight of Step-Growth Polymers01:08

Molecular Weight of Step-Growth Polymers

2.1K
Step growth polymerization involves bi or multifunctional monomers. Bifunctional monomers react to form linear step growth polymers, whereas multifunctional monomers react to form non-linear or branched polymers.
As the step-growth polymerization involves step-wise condensation of monomers, the molecular weight also builds up eventually. Consequently, high molecular weight polymers are obtained at the late stages of the polymerization, where 99% of monomers have been consumed.
The extent of the...
2.1K

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相关实验视频

Updated: May 13, 2025

Synthesis of Cyclic Polymers and Characterization of Their Diffusive Motion in the Melt State at the Single Molecule Level
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在单晶,多晶和溶液聚合物中进行高保真度拓化学聚合.

Chongqing Yang1, Jianfang Liu1, Rebecca Shu Hui Khoo1

  • 1The Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA, 94720, USA.

Nature communications
|April 12, 2025
PubMed
概括

拓化学聚合 (TCP) 现在可以在液体介质中实现单晶到单晶的转化. 这一突破使得高晶性聚合物纳米纤维的合成具有精确的结构完整性.

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科学领域:

  • 聚合物化学 聚合物化学
  • 材料科学 材料科学 材料科学
  • 晶体学 晶体学是指结晶学.

背景情况:

  • 拓化学聚合 (TCP) 是单晶聚合物合成的关键.
  • 传统的TCP仅限于固态转换,由于格子不匹配,在单晶到单晶 (SCSC) 转换中面临挑战.
  • 在液体介质中执行TCP,同时保持固态忠实性仍然是一个公开的挑战.

研究的目的:

  • 在TCP过程中调查合性阿扎基诺二甲 (AQM) 单体的SCSC转换机制.
  • 探索在液体介质中执行TCP的潜力.
  • 了解侧链结构对聚合动学的影响.

主要方法:

  • 在现场进行X射线晶体分析,以监测SCSC转换.
  • 在粉末和薄膜的现场调查.
  • 液相TCP的抗溶剂增强聚合方法.

主要成果:

  • 在奇拉性AQM单体TCP期间SCSC转换的详细阐明,揭示了一种罕见的转移稳定的晶体相.
  • 在固态反应中确定侧链依赖的聚合动力学.
  • 成功实施液体介质TCP用于AQM单体,产生与固态产品相比的高度晶体聚合物纳米纤维.

结论:

  • 在固体和液体状态下,TCP表现出高结构精度.
  • 该研究为合成可加工的纳米结构聚合物提供了关键的见解,具有受控的结构完整性.
  • 这项工作扩大了TCP的范围,用于创建先进的聚合物材料.