在二维和三维协调组件中的结构图案中,二极和四极4,2':6',4''-特皮里丁作为结构图案
Catherine E Housecroft1, Edwin C Constable2
1Department of Chemistry, University of Basel, BPR 1096, Mattenstrasse 24a, CH-4058 Basel. Email: catherine.housecroft@unibas.ch. catherine.housecroft@unibas.ch.
Chimia
|March 29, 2024
概括
具有特皮里丁金属结合域的二极管和四极管连接体作为创建二维和三维协调网络的多功能构建块. 这些配体上的功能组显著影响最终组装结构.
科学领域:
- 协调化学 协调化学
- 超分子化学 超分子化学
- 材料科学 材料科学 材料科学
背景情况:
- 二连接物在协调化学中对于构建复杂架构至关重要.
- 迪托普和托普连接体为网络形成提供了多样化的连接性.
- 功能组,如基基链,在指导组装方面发挥着关键作用.
研究的目的:
- 概述与特皮里丁域配合的二托普和四托普连接体的协调化学.
- 为了说明这些连接体在构建二维和三维协调网络中的适应性.
- 为了证明连接体功能对组装结果的影响.
主要方法:
- 使用具有4,2":6",4"-特皮里丁金属结合域的二极管和四极管连接体.
- 探索连接节点和金属连接器的组合,以形成协调网络.
- 将协调组件限制在2D,通过将连接物沉积在Au{111}或Cu{111}表面上,并使用金属基.
主要成果:
- 迪托普连接体作为连接体,而四连接体可以作为4连接节点.
- 节点和链接器的组合产生2D和3D网络.
- 在金属基板上的连接体表面沉积会产生高度有序的2D梯子组件,独立于溶剂或离子.
结论:
- 迪托普和四托普特皮里丁连接体是协调网络的可适应性构建块.
- 连接体的功能对协调组件的结构产生了深远的影响.
- 局限于表面的自组装为有序的二维协调结构提供了一条路径.
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