热/机械-染色合调度器:通过合自我排序形成可切换和可变稳定的离散结构
Kazuyoshi Takimoto1,2, Takumi Shimada1, Kazuhiko Nagura3
1Graduate School of Science and Engineering, Ehime University, 2-5 Bunkyo-cho, Matsuyama, Ehime 790-8577, Japan.
Journal of the American Chemical Society
|November 9, 2023
概括
化 ((III) 复合物与丁 (h) 联体优先形成同体二元体,使其能够在离散的超分子组合中具有可切换的热/机色特性.
科学领域:
- 超分子化学
- 协调化学
- 基质材料
背景情况:
- 通常在扩展的聚合物中观察到奇拉的自我分类,而不是离散的分子组件.
- 这限制了可切换和转移稳定的性超分子结构的设计.
- 离散的合组件为新的功能材料提供了潜力.
研究的目的:
- 在离散的 (III) 复合体中研究性自我分类.
- 探索性,二元化和热/机色行为之间的关系.
- 设计可切换和转移稳定的离散性超分子结构.
主要方法:
- 基于丁[h]的 (III) 复合物的合成 (Bu-Ir).
- 可变温度紫外线和1H核磁共振光谱以研究二分化.
- 结晶学和机械研磨实验以评估转移稳定性和颜色变化.
主要成果:
- 布-伊尔复合体表现出强烈的偏好在于同体二元形成 (K_homo/K_hetero > 50).
- 均二元体具有转移稳定性,并表现出热色/机械色 (在研磨时呈黄色至红色).
- 模态化涉及由基替代剂产生的匹配螺旋性和固态效应.
结论:
- 离散的合组件的理性设计可以导致强大的合自我排序.
- 丁-[h]化) 复合体表现出可切换和转移稳定的特性.
- 这些发现提供了关于性超分子系统的动态功能的见解.
相关概念视频
Stereoisomerism
12.0K
Isomerism in Complexes
Isomers are different chemical species that have the same chemical formula.
Transition metal complexes often exist as geometric isomers, in which the same atoms are connected through the same types of bonds but with differences in their orientation in space. Coordination complexes with two different ligands in the cis and trans positions from a ligand of interest form isomers. For example, the octahedral [Co(NH3)4Cl2]+ ion has two isomers (Figure 1) In the cis...
Isomers are different chemical species that have the same chemical formula.
Transition metal complexes often exist as geometric isomers, in which the same atoms are connected through the same types of bonds but with differences in their orientation in space. Coordination complexes with two different ligands in the cis and trans positions from a ligand of interest form isomers. For example, the octahedral [Co(NH3)4Cl2]+ ion has two isomers (Figure 1) In the cis...
12.0K
Prochirality
3.8K
The concept of prochirality leads to the nomenclature of the individual faces of a molecule and plays a crucial role in the enantioselective reaction. It is a concept where two or more achiral molecules react to produce chiral products. A typical process is the reaction of an achiral ketone to generate a chiral alcohol. Here, the achiral reactant reacts with an achiral reducing agent, sodium borohydride, to generate an equimolar mixture of the chiral enantiomers of the product. For example, an...
3.8K
Stereoisomerism of Cyclic Compounds
8.9K
In this lesson, we delve into the role of ring conformation and its stability, which determines the spatial arrangement and, consequently, the molecular symmetry and stereoisomerism of cyclic compounds. 1,2-Dimethylcyclohexane is used as a case study to evaluate the possible number of stereoisomers. Here, given the multiple (n = 2) chiral centers, there are 2n = 4 possible configurations that lack a plane of symmetry, as the ring skeleton exists in a non-planar chair conformation. In addition,...
8.9K
Chirality in Nature
13.5K
Chirality is the most intriguing yet essential facet of nature, governing life’s biochemical processes and precision. It can be observed from a snail shell pattern in a macroscopic world to an amino acid, the minutest building block of life. Most of the snails around the world have right-coiled shells because of the intrinsic chirality in their genes. All the amino acids present in the human body exist in an enantiomerically pure state, except for glycine - the sole achiral amino acid.
13.5K
Molecules with Multiple Chiral Centers
11.8K
Molecules that possess multiple chiral centers can afford a large number of stereoisomers. For instance, while some molecules like 2-butanol have one chiral center, defined as a tetrahedral carbon atom with four different substituents attached, several molecules like butane-2,3-diol have multiple chiral centers. A simple formula to predict the number of stereoisomers possible for a molecule with n chiral centers is 2n. However, there can be a lower number where some of the stereoisomers are...
11.8K
Chirality at Nitrogen, Phosphorus, and Sulfur
5.7K
Chirality is most prevalent in carbon-based tetrahedral compounds, but this important facet of molecular symmetry extends to sp3-hybridized nitrogen, phosphorus and sulfur centers, including trivalent molecules with lone pairs. Here, the lone pair behaves as a functional group in addition to the other three substituents to form an analogous tetrahedral center that can be chiral.
A consequence of chirality is the need for enantiomeric resolution. While this is theoretically possible for all...
A consequence of chirality is the need for enantiomeric resolution. While this is theoretically possible for all...
5.7K


