使用修改的齐姆模型计算恒星和环聚合物的内在粘度的数值计算
Chi Pui Jeremy Wong1, Phillip Choi1
1Faculty of Engineering and Applied Science, University of Regina, Regina, Saskatchewan S4S 0A2, Canada.
The Journal of chemical physics
|October 15, 2025
概括
这项研究使用修改后的齐姆模型研究了诸如环和恒星之类的聚合物结构. 增加恒星聚合物臂降低了内在粘度,并加速了剪切放松模量衰变.
科学领域:
- 聚合物物理 聚合物物理
- 类风病学 类风病学 类风病学
- 理论化学 理论化学
背景情况:
- 了解聚合物粘弹性特性对于材料科学至关重要.
- 聚合物架构 (例如,环与恒星) 对质行为的影响是复杂的.
- 现有的模型可能无法完全捕捉溶液中不同聚合物结构的细微差别.
研究的目的:
- 从理论上研究聚合物结构 (环和对称星聚合物) 对稀释溶液粘弹性质的影响.
- 从粘弹性数据推断聚合物结构的系统方法的开发.
- 为了比较环聚合物的行为与不同臂数的恒星聚合物.
主要方法:
- 使用修改后的齐姆模型进行理论研究.
- 计算了剪切放松模量和内在粘度.
- 专注于聚合物在甲基溶剂中 (稀释溶液条件).
主要成果:
- 对称星聚合物的内在粘度随着臂数的增加而降低 (对于固定的分子量).
- 剪切放松模块随着星聚合物中臂数的增加而变得更快.
- 在稀释溶液中的环聚合物动力学被发现与六臂星聚合物相似.
结论:
- 修改后的齐姆模型提供了一种系统的方法,通过粘弹性特性来确定聚合物结构.
- 聚合物架构显著影响粘弹性行为,对材料设计产生影响.
- 这些发现提供了关于分子结构和宏观性质之间的关系的见解.
相关概念视频
Polymers: Molecular Weight Distribution
4.7K
For any given polymer, the weight average molecular weight (Mw) is higher than, if not equal to, the number average molecular weight (Mn). The only situation in which the weight average molecular weight and the number average molecular weight are equal is when a polymer consists only of chains with equal molecular weight. However, this never happens in a synthetic polymer, since it is difficult to control the polymerization process up to a molecular level with accuracy to a hundred percent.
4.7K
Polymers: Defining Molecular Weight
3.7K
Unlike small molecules with definite molecular weights, polymers are a mixture of individual polymer chains of varying lengths, each with a unique molecular weight. So, the molecular weight of a polymer is expressed as an average value based on the average size of the polymer chains. The two most common forms of averages used for polymers are the number average molecular weight and weight average molecular weight.
The number average molecular weight (Mn) is the summation of the number...
The number average molecular weight (Mn) is the summation of the number...
3.7K
Molecular Weight of Step-Growth Polymers
2.7K
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...
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...
2.7K
Ziegler–Natta Chain-Growth Polymerization: Overview
3.9K
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...
3.9K
Viscosity of Fluid
1.1K
Viscosity measures the resistance a fluid offers to flow and deformation. It results from internal friction between layers of fluid moving relative to one another. Dynamic viscosity, denoted by the Greek letter mu (μ), quantifies the force needed to move one fluid layer over another. For Newtonian fluids like water and air, the relationship between the shearing stress and the rate of shearing strain is linear, meaning their viscosity remains constant regardless of the applied stress.
1.1K
Poiseuille's Law and Reynolds Number
9.1K
Any fluid in a horizontal tube can flow due to pressure differences—fluid flows from high to low pressure. The flow rate (Q) is the ratio of pressure difference and resistance through a horizontal tube. The greater the pressure difference, the higher the flow rate. The flow resistance is expressed as:
9.1K


