氨酸酸的离子热合成为焦化物框架
Emily R Parnham1, Russell E Morris
1EaStChem School of Chemistry, University of St. Andrews, Purdie Building, St. Andrews, KY16 9ST U.K.
Journal of the American Chemical Society
|February 16, 2006
概括
使用离子热方法合成了合金酸盐化物. 发现了一种新型的热岩结构,SIZ-7,其框架内呈现不平等的分布.
科学领域:
- 材料科学 材料科学 材料科学
- 无机化学 无机化学 有机化学
- 晶体学 晶体学是指结晶学.
背景情况:
- 热质石是重要的微孔材料,在催化和分离中具有应用.
- 含有的化物因其催化性能而引起人们的兴趣.
- 离子热合成为热制造提供了一个独特的途径.
研究的目的:
- 使用离子热方法合成新型合金酸氧化物.
- 描述合成材料的结构和特性.
- 为了调查在热带石框架内的分布.
主要方法:
- 使用离子液体作为溶剂和结构指导剂的离子热合成.
- 粉末X射线衍射用于相位识别.
- 单晶X射线衍射用于详细的结构分析.
主要成果:
- 成功合成了三种不同的氨酸化化.
- 两种热岩被确定为具有已知的AEI和SOD框架的同结构.
- 发现了一种新型的热带石结构,SIZ-7,与8环热带石家族 (MER,GIS,PHI) 有关.
- 单晶X射线衍射揭示了SIZ-7中四面体位点的分布不均.
结论:
- 离子热合成是有效的,用于创建合金酸焦化物.
- 发现SIZ-7扩大了8环化石的家族.
- 在SIZ-7中的分布不均,可能会影响其催化性能.
相关概念视频
Electrophilic Addition to Alkynes: Halogenation
Introduction
Halogenation is another class of electrophilic addition reactions where a halogen molecule gets added across a π bond. In alkynes, the presence of two π bonds allows for the addition of two equivalents of halogens (bromine or chlorine). The addition of the first halogen molecule forms a trans-dihaloalkene as the major product and the cis isomer as the minor product. Subsequent addition of the second equivalent yields the tetrahalide.
Halogenation is another class of electrophilic addition reactions where a halogen molecule gets added across a π bond. In alkynes, the presence of two π bonds allows for the addition of two equivalents of halogens (bromine or chlorine). The addition of the first halogen molecule forms a trans-dihaloalkene as the major product and the cis isomer as the minor product. Subsequent addition of the second equivalent yields the tetrahalide.
Acid Halides to Carboxylic Acids: Hydrolysis
Hydrolysis of acid halides is a nucleophilic acyl substitution reaction in which acid halides react with water to give carboxylic acids. The reaction occurs readily and does not require acid or a base catalyst.
As shown below, the mechanism involves a nucleophilic attack by water at the carbonyl carbon to form a tetrahedral intermediate. This is followed by the reformation of the carbon–oxygen π bond along with the departure of a halide ion. A final proton transfer step yields carboxylic acid...
As shown below, the mechanism involves a nucleophilic attack by water at the carbonyl carbon to form a tetrahedral intermediate. This is followed by the reformation of the carbon–oxygen π bond along with the departure of a halide ion. A final proton transfer step yields carboxylic acid...
Acid Halides to Esters: Alcoholysis
Alcoholysis is a nucleophilic acyl substitution reaction in which an alcohol functions as a nucleophile. Acid halides react with alcohol to produce esters. The mechanism proceeds in three steps:
Electrophilic Aromatic Substitution: Friedel–Crafts Alkylation of Benzene
Friedel–Crafts reactions were developed in 1877 by the French chemist Charles Friedel and the American chemist James Crafts. Friedel–Crafts alkylation refers to the replacement of an aromatic proton with an alkyl group via electrophilic aromatic substitution. A Lewis acid catalyst such as aluminum chloride reacts with an alkyl halide to form a carbocation. The resulting carbocation then reacts with the aromatic ring and undergoes a series of electron rearrangements before giving the final...
Electrophilic Aromatic Substitution: Friedel–Crafts Acylation of Benzene
The Friedel–Crafts acylation reactions involve the addition of an acyl group to an aromatic ring. These reactions proceed via electrophilic aromatic substitution by employing an acyl chloride and a Lewis acid catalyst such as aluminum chloride to form aryl ketone.
Radical Formation: Homolysis
A bond is formed between two atoms by sharing two electrons. When this bond is broken by supplying sufficient energy, either two electrons can be taken up by one atom forming ions by the cleavage called heterolysis, or the two electrons are shared by two atoms, with one each creating radicals by the cleavage called homolysis.


