一,二,三维互锁聚合物基于混合无机有机罗塔克桑
Selena J Lockyer1, George F S Whitehead1, Grigore A Timco1
1Department of Chemistry, The University of Manchester, Oxford Road, Manchester, M13 9PL, UK. selena.lockyer@manchester.ac.uk.
概括
三种新型聚合物在温和条件下使用机械互锁无机有机罗塔克桑合成. 聚合物结构,二维或三维网,取决于所用的溶剂,展示可调节的网络架构.
科学领域:
- 材料科学 材料科学 材料科学
- 超分子化学 超分子化学
- 聚合物化学 聚合物化学
背景情况:
- 机械互锁分子 (MIMs) 具有独特的结构和功能特性.
- 作为一种MIM类型的罗塔克桑,正在越来越多地被用于先进的材料应用.
- 复杂的聚合物架构的受控合成仍然是一个关键的挑战.
研究的目的:
- 合成基于无机有机罗塔克桑的新型聚合物.
- 研究反应条件,特别是溶剂对产生的聚合物拓学的影响.
- 描述新形成的聚合物网络的结构特征.
主要方法:
- 无机有机罗塔克桑与胺基头组的合成.
- 协调驱动的自组装使用铜(II) 连接单元.
- 取决于溶剂的结晶和结构分析 (例如,X射线衍射).
主要成果:
- 通过使用罗塔xane构建块成功合成了三种新的聚合物.
- 用溶剂控制的不同聚合物网络拓的形成的演示.
- 基于溶剂选择的二维6.3网和三维10.3b网的识别.
结论:
- 温和的反应条件使得复杂的基于罗他森的聚合物能够形成.
- 溶剂选择是指导自组装和控制聚合物网络维度的关键参数.
- 这些发现为设计可调节的超分子材料开辟了道路.
相关概念视频
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
Characteristics and Nomenclature of Copolymers
2.5K
Copolymers are the products obtained from the polymerization of multiple monomer species. So, in a polymer chain itself, there can be multiple repeating units that come from different monomers. The process of synthesizing a polymer from different monomer species is called copolymerization. When two monomers are involved, the polymer is known as a bipolymer. Polymers with three and four monomers are termed terpolymers and quaterpolymers, respectively. Figure 1 depicts the copolymerization of...
2.5K
Polymer Classification: Architecture
2.7K
Polymers are classified as linear or branched on the basis of their chain architecture. The polymer chains in linear polymers have a long chain-like structure with minimal to no branching at all. Even if a polymer features large substituent groups on the monomer, which appear as branches to the skeleton, it is not considered a branched polymer. A branched polymer contains secondary polymer chains that arise from the main polymer chain. The branching occurs when the polymer growth shifts from...
2.7K
Olefin Metathesis Polymerization: Ring-Opening Metathesis Polymerization (ROMP)
2.5K
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...
2.5K
Radical Chain-Growth Polymerization: Chain Branching
1.9K
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...
1.9K
Polymers
35.5K
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...
35.5K


