化Oppolzer乙烯酸盐:溶液结构,化机制和立体选择性的起源
Nathan M Lui1, Samantha N MacMillan1, David B Collum1
1Department of Chemistry and Chemical Biology Baker Laboratory, Cornell University Ithaca, New York 14853-1301, United States.
Journal of the American Chemical Society
|December 19, 2022
概括
奥波尔泽酸盐通过受溶剂和聚合状态影响的机制进行化. 立体选择性源于苏丹的戒指.
科学领域:
- 有机化学 有机化学
- 立体化学是一种立体化学.
- 物理有机化学 有机化学
背景情况:
- 基于Camphorsultam的乙烯酸或Oppolzer乙烯酸在不对称合成中至关重要.
- 了解它们的聚合和反应性是控制立体选择性的关键.
- 之前的研究已经探索了它们的合成实用性,但机械细节仍然难以捉摸.
研究的目的:
- 为了阐明奥波尔泽埃诺酸盐的化机制.
- 为了确定这些反应中的立体选择性的起源.
- 研究溶剂和聚合物对酸盐结构和反应性的影响.
主要方法:
- 用光谱和晶体分析来确定体结构.
- 动力学研究探讨反应机制.
- 使用密度函数理论 (DFT) 的计算建模.
- 在烯,THF和HMPA中依赖溶剂的研究.
主要成果:
- 观察到不同的聚合状态 (四聚体,二聚体,单聚体),取决于基质和溶剂.
- HMPA (六甲基酸) 协调影响聚合和反应性.
- 化通过HMPA溶解的离子对进行,溶剂效应是次要的.
- 密度函数理论 (DFT) 的计算支持一种模型,其中立体选择性源于苏丹环的性.
结论:
- 奥波尔泽酸盐化过程的立体化学结果是由苏拉姆环的固有性决定的.
- 化和对子都没有在控制立体选择性方面发挥重要作用.
- 溶剂和聚合状态调节反应性,但不是立体控制的基本来源.
相关概念视频
α-Alkylation of Ketones via Enolate Ions
3.3K
Ketones with α protons are deprotonated by strong bases like lithium diisopropylamide (LDA) to form enolate ions. The anion is stabilized by resonance, and its hybrid structure exhibits negative charges on the carbonyl oxygen and the α carbon. This ambident nucleophile can attack an electrophile via two possible sites: the carbonyl oxygen, known as O-attack, or the α carbon, known as C-attack. The nucleophilic attack via the carbanionic site is preferred. This is due to the...
3.3K
Stereochemical Effects of Enolization
2.1K
The chiral α-carbon of the carbonyl compound is the stereocenter of the molecule. As shown in the figure below, when such a carbonyl compound undergoes racemization under an acidic or basic condition, an achiral enol is formed.
2.1K
Oxidation of Alkenes: Syn Dihydroxylation with Osmium Tetraoxide
10.6K
Alkenes are converted to 1,2-diols or glycols through a process called dihydroxylation. It involves the addition of two hydroxyl groups across the double bond with two different stereochemical approaches, namely anti and syn. Dihydroxylation using osmium tetroxide progresses with syn stereochemistry.
10.6K
Regioselective Formation of Enolates
2.8K
As depicted in the figure below, the unsymmetrical ketones can form two possible enolates: less substituted or more substituted enolates. Usually, the thermodynamic enolates are formed from the more substituted α-carbon atom, while the kinetic enolates are formed faster by deprotonation from the less substituted position. The thermodynamic enolates have lower energy, so they are more stable. But the energy required to form kinetic enolates is less.
2.8K
Factors Affecting α-Alkylation of Ketones: Choice of Base
3.3K
α-Alkylation of ketones is achieved in the presence of alkyl halides and a base. The reaction proceeds via the formation of an enolate ion followed by nucleophilic substitution. The choice of base employed is essential as it is the key factor in determining the reaction outcome.
The reaction involving bases like EtO− whose conjugate acid EtOH (pKa = 15.9) is stronger than the ketone (pKa = 19.2) results in an equilibrium mixture with higher ketone concentration. As a consequence,...
The reaction involving bases like EtO− whose conjugate acid EtOH (pKa = 15.9) is stronger than the ketone (pKa = 19.2) results in an equilibrium mixture with higher ketone concentration. As a consequence,...
3.3K
Reactivity of Enols
3.3K
Enols are a class of compounds where a hydroxyl group is attached to a carbon–carbon double bond, which implies that it is a vinyl alcohol. A carbonyl compound with an α hydrogen undergoes keto–enol tautomerism and remains in equilibrium with its tautomer, the enol form. Usually, the keto tautomer is present in a higher concentration than the enol tautomer due to the higher bond energy of C=O compared to C=C. Moreover, the direction of the keto–enol equilibrium is...
3.3K


