酸盐原产物化学的历史和近期发展
Stephan Hohloch1, Frank Tambornino2
1Leopold-Franzens-University Innsbruck, Faculty of Chemistry and Pharmacy, Institute of General, Inorganic and Theoretical Chemistry, Innrain 80-82, 6020 Innsbruck, Austria.
Inorganic chemistry
|June 11, 2025
概括
酸盐和重基离子在历史上具有重要意义,目前在化学合成中至关重要. 这篇评论详细介绍了它们的演变,电子结构和现代应用,作为多功能构建块.
科学领域:
- 无机化学 无机化学 有机化学
- 化学史 化学史 化学史
背景情况:
- 酸离子 ([OCN]−) 和它的重类 ([ChCPn]−) 是化学的基础.
- 它们的发现和研究跨越了200多年,标志着像异构和伪素概念这样的里程碑.
研究的目的:
- 探索从1800年代到现在的酸盐和重基离子的历史发展.
- 总结和比较它们的电子结构和它们在化学转换中的作用.
- 提供最先进的关于最重的同源物质化学的概述.
主要方法:
- 历史文献综述 (1800年代至今).
- 电子结构的比较分析.
- 汇编了关于重型花粉原体的近期研究.
主要成果:
- 酸盐和相关离子的详细历史进展.
- 洞察到电子结构驱动其实用性的洞察力.
- 证明重型菌素的同源物作为关键的合成构建块.
结论:
- 这些离子在化学中具有丰富的历史和不断变化的重要性.
- 它们的电子特性使得它们对于合成新型化合物不可或缺.
- 沉重的平基原生产物为当代化学研究提供了重大机会.
相关概念视频
Aldehydes and Ketones with HCN: Cyanohydrin Formation Overview
2.6K
Cyanohydrins are compounds that contain –CN and –OH groups on the same carbon atom. They are formed by the nucleophilic addition of the cyanide ions to the carbonyl group. Cyanide ions are highly basic and nucleophilic and can be generated from HCN under aqueous conditions. However, since HCN is a weak acid, the number of cyanide ions generated is very small. Hence, a small amount of base or KCN/NaCN is added to HCN to increase the concentration of the cyanide ions in the reaction...
2.6K
Aldehydes and Ketones with HCN: Cyanohydrin Formation Mechanism
3.0K
Cyanohydrins are formed when cyanide nucleophiles and carbonyl compounds like aldehydes and ketones react. A strong base, the cyanide ion, catalyzes cyanohydrin formation. The ions are generated from HCN under aqueous conditions. Once the cyanide ions are generated, the first step involves the nucleophilic attack of the cyanide ions on the electrophilic carbonyl carbon. This attack shifts the π electrons from the C=O to the oxygen atom forming the alkoxide ion intermediate. The alkoxide anion...
3.0K
Preparation of Nitriles
2.0K
One of the common methods to prepare nitriles is the dehydration of amides. This method requires strong dehydrating agents like phosphorous pentoxide or boiling acetic anhydride for converting amides to nitriles. Another reagent namely, thionyl chloride also accomplishes the dehydration of amides, where amide acts as a nucleophile. The first step of the mechanism involves the nucleophilic attack by the amide on the thionyl chloride to form an intermediate. In the next step, the electron pairs...
2.0K
Diazonium Group Substitution: –OH and –H
2.7K
Nitrous acid, a weak acid, is prepared in situ via the reaction of sodium nitrite with a strong acid under cold conditions. This nitrous acid prepared in situ reacts with primary arylamines to form arenediazonium salts. Such reactions are known as diazotization reactions. As shown in Figure 1, the formation of arenediazonium salts begins with the decomposition of nitrous acid in an acidic solution to give nitrosonium ions.
2.7K
1° Amines to Diazonium or Aryldiazonium Salts: Diazotization with NaNO2 Overview
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Nitrous acid and nitric acids are two types of acids containing nitrogen, among which nitrous acid is weaker than nitric acid. Nitrous acid with a pKa value of 3.37 ionizes in water to give a nitrite ion and the hydronium ion.
The nitrous acid is unstable. Hence, it is formed in situ from a solution of sodium nitrite and cold aqueous acids such as hydrochloric or sulfuric acid. In an acidic solution, the –OH group of nitrous acid undergoes protonation to give oxonium ion, followed by...
The nitrous acid is unstable. Hence, it is formed in situ from a solution of sodium nitrite and cold aqueous acids such as hydrochloric or sulfuric acid. In an acidic solution, the –OH group of nitrous acid undergoes protonation to give oxonium ion, followed by...
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Phase II Reactions: Miscellaneous Conjugation Reactions
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Phase II biotransformations are detoxification mechanisms that conjugate xenobiotics with endogenous substances, neutralizing their toxicity.
A key example involves the conjugation of cyanide ions, which impair cellular respiration and alter hemoglobin into non-oxygen-carrying cyanmethemoglobin. To neutralize this threat, a sulfur atom from thiosulphate is transferred to the cyanide ion, catalyzed by the enzyme rhodanese, resulting in an inactive compound called thiocyanate. The production of...
A key example involves the conjugation of cyanide ions, which impair cellular respiration and alter hemoglobin into non-oxygen-carrying cyanmethemoglobin. To neutralize this threat, a sulfur atom from thiosulphate is transferred to the cyanide ion, catalyzed by the enzyme rhodanese, resulting in an inactive compound called thiocyanate. The production of...
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