大孔异构Mg-CUK-1的可逆固态异构
Junpeng He1, Kanchan Aggarwal1, Naman Katyal1
1Department of Chemistry, University of Texas at Austin, Austin, Texas 78712, United States.
Journal of the American Chemical Society
|March 19, 2020
概括
一个新的大孔金属有机框架 (MOF),Mg-CUK-1L,证明了选择性二氧化碳 (CO2) 捕获和可逆的客分子含量. 这种MOF对气体分离和宿主-客户化学应用具有前景.
科学领域:
- 材料科学
- 化学学
- 纳米技术
背景情况:
- 金属有机框架 (MOF) 是多孔材料,具有多种应用.
- Mg-CUK-1是一种具有1-D通道的水稳定MOF.
- 开发具有定制孔径的MOF对于选择性气体吸附至关重要.
研究的目的:
- 合成Mg-CUK-1的大孔变体 (Mg-CUK-1L).
- 研究Mg-CUK-1L的二氧化碳吸收特性.
- 探索有机分子进入Mg-CUK-1L及其行为.
主要方法:
- 在基本水溶液中合成Mg-CUK-1L.
- 气体吸附分析 (BET表面积,二氧化碳选择性)
- 单晶X射线衍射和固态紫外线光谱.
- 密度函数理论 (DFT) 的模拟.
主要成果:
- Mg-CUK-1L具有很高的BET表面积 (2896 m2 g-1).
- Mg-CUK-1L对N2,O2,H2和CH4具有较高的选择性.
- 在0.33 atm以下观察到可逆的多步二氧化碳吸附.
- 在脱水后,MOF结构保持开放的通道.
- 在MOF通道中成功加载和异构化了trans- Azobenzene.
结论:
- Mg-CUK-1L是一种有前途的选择性二氧化碳捕获材料.
- 在其道内,MOF促进可逆客分子异构.
- 这项工作突显了MOF在先进分离和分子操纵应用中的潜力.
相关概念视频
[3,3] Sigmatropic Rearrangement of 1,5-Dienes: Cope Rearrangement
3.3K
The Cope rearrangement is classified as a [3,3] sigmatropic shift in 1,5-dienes, leading to a more stable, isomeric 1,5-diene. The reaction involves a concerted movement of six electrons, four from two π bonds and two from a σ bond, via an energetically favorable chair-like transition state.
3.3K
Disubstituted Cyclohexanes: cis-trans Isomerism
13.8K
Depending upon the different spatial orientation of the substituents, the disubstituted cycloalkanes exhibit two types of stereoisomers. The cis isomers have the substituents on the same side of the ring, whereas the trans isomers have the substituents on the opposite sides. These stereoisomers exhibit different physical properties and cannot be interconverted without breaking the carbon-carbon bonds.
In cyclohexane, the substituents can occupy different positions generating distinct isomers....
In cyclohexane, the substituents can occupy different positions generating distinct isomers....
13.8K
Stereoisomerism of Cyclic Compounds
10.8K
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,...
10.8K
Isomerism in Alkenes
14.5K
Alkenes like 1-butene and 2-butene exhibit constitutional isomerism, as they differ in the position of the double bond. Further, 2-butene exhibits stereoisomerism and exists as two distinct compounds differing in spatial arrangement.
An isomer is called cis-2-butene when the methyl groups are on the same side of the double bond, and the other stereoisomer, in which methyl groups are on the opposite side of the double bond, is called trans-2-butene. The cis and trans stereoisomers are not...
An isomer is called cis-2-butene when the methyl groups are on the same side of the double bond, and the other stereoisomer, in which methyl groups are on the opposite side of the double bond, is called trans-2-butene. The cis and trans stereoisomers are not...
14.5K
Woodward–Hoffmann Selection Rules and Microscopic Reversibility
3.7K
Electrocyclic reactions, cycloadditions, and sigmatropic rearrangements are concerted pericyclic reactions that proceed via a cyclic transition state. These reactions are stereospecific and regioselective. The stereochemistry of the products depends on the symmetry characteristics of the interacting orbitals and the reaction conditions. Accordingly, pericyclic reactions are classified as either symmetry-allowed or symmetry-forbidden. Woodward and Hoffmann presented the selection criteria for...
3.7K
Thermal and Photochemical Electrocyclic Reactions: Overview
2.9K
Electrocyclic reactions are reversible reactions. They involve an intramolecular cyclization or ring-opening of a conjugated polyene. Shown below are two examples of electrocyclic reactions. In the first reaction, the formation of the cyclic product is favored. In contrast, in the second reaction, ring-opening is favored due to the high ring strain associated with cyclobutene formation.
2.9K


