一种Para-benzyne的化学特性
F Sedinam Amegayibor1, John J Nash, Anna S Lee
1Department of Chemistry, Purdue University, West Lafayette, Indiana 47907, USA.
Journal of the American Chemical Society
|October 10, 2002
概括
这项研究产生了5,8-二甲化化离子,一种类类似物,并检查了它的反应性. 研究人员发现,这种巴巴类比是较弱的电友,但与其元同位素相比,它是一种更具反应性的基因.
科学领域:
- 有机化学 有机化学
- 物理化学 物理化学
- 质谱测量质量谱测量
背景情况:
- 异构体是有机化学中的反应性中间体.
- 了解类同类的反应性,可以了解反应机制.
- 二类似物具有独特的电子和硬质性质.
研究的目的:
- 为了生成和表征5,8-二甲化化离子,一种巴氨酸类似物.
- 为了研究这种离子对中性试剂的反应性.
- 为了比较para-benzyne类似物与它们的元异构体和相关基的反应性.
主要方法:
- 使用富里埃变态离子循环振质谱法 (FT-ICR MS) 生成5,8-二甲化离子.
- 与各种中性试剂反应的动力学研究.
- 反应速率的比较分析.
主要成果:
- 成功生成了5,8-二二化化离子.
- 二类似物表现出明显的反应模式.
- 与其甲同位素相比,para-benzyne模拟物是一种不那么有效的电友,但是一种更强大的基因.
结论:
- 5,8-二化化离子作为一种有价值的类对应物,用于反应性研究.
- 异构体之间的活性差异受其电子结构的影响.
- 这项研究有助于理解有机合成中的反应性中间体.
相关概念视频
Structure of Benzene: Kekulé Model
In 1865, August Kekule suggested the structure of benzene according to the structural theory of organic chemistry based on the three assertions—formula of benzene is C6H6, all the hydrogens of benzene are equivalent, and each carbon must have four bonds due to its tetravalency.
He proposed that benzene has a cyclic structure of six carbon atoms attached to one hydrogen atom each, with three alternating pi bonds.
He proposed that benzene has a cyclic structure of six carbon atoms attached to one hydrogen atom each, with three alternating pi bonds.
Structure of Benzene: Molecular Orbital Model
According to the molecular orbital (MO) model, benzene has a planar structure with a regular hexagon of six sp2 hybridized carbons. As shown in Figure 1, each carbon is bonded to three other atoms with C–C–C and H–C–C bond angles of 120°. The C–H bond length is 109 pm, and the C–C bond length is 139 pm which is midway between the single bond length of sp3 hybridized carbons (154 pm) and sp2 hybridized carbons (133 pm).
Directing Effect of Substituents: ortho–para-Directing Groups
Ortho–para directors are substituent groups attached to the benzene ring and direct the addition of an electrophile to the positions ortho or para to the substituent. All electron-donating groups are considered ortho–para directors. They donate electrons to the ring and make the ring more electron-rich. The ring is therefore susceptible to the addition of electrophiles. Substituents such as amino, hydroxy, or alkoxy, containing lone pairs on the atom adjacent to the ring, donate electrons...
ortho–para-Directing Activators: –CH3, –OH, –⁠NH2, –OCH3
All ortho–para directors, excluding halogens, are activating groups. These groups donate electrons to the ring, making the ring carbons electron-rich. Consequently, the reactivity of the aromatic ring towards electrophilic substitution increases. For instance, the nitration of anisole is about 10,000 times faster than the nitration of benzene. The electron-donating effect of the methoxy group in anisole activates the ortho and para positions on the ring and stabilizes the corresponding...
Nomenclature of Aromatic Compounds with Multiple Substituents
When more than one substituent is present on the benzene ring, the IUPAC nomenclature depends on the number of substituents present.
For disubstituted benzene derivatives, with two groups attached to the benzene ring, three constitutional isomers are possible. For example, consider dimethyl benzene, often called xylene, where the second methyl group can be substituted at the second, third, or fourth carbon. The relative position of the substituents is represented by prefixes ortho, meta, or...
For disubstituted benzene derivatives, with two groups attached to the benzene ring, three constitutional isomers are possible. For example, consider dimethyl benzene, often called xylene, where the second methyl group can be substituted at the second, third, or fourth carbon. The relative position of the substituents is represented by prefixes ortho, meta, or...
NMR Spectroscopy of Benzene Derivatives
Simple unsubstituted benzene has six aromatic protons, all chemically equivalent. Therefore, benzene exhibits only a singlet peak at δ 7.3 ppm in the 1H NMR spectrum. The observed shift is far downfield because the aromatic ring current strongly deshields the protons. Any substitution on the benzene ring makes the aromatic protons nonequivalent, and the protons split each other. The peak is, therefore, no longer a singlet and the splitting pattern and their associated coupling constants depend...


