合成中的有争议的命名法:要求清晰
Anamika Sharma1, Ashish Kumar1,2, Beatriz G de la Torre2
1Peptide Science Laboratory, School of Chemistry and Physics, University of KwaZulu-Natal, Durban, South Africa.
概括
合成使用经典的溶液相 (CSPS),固体相 (SPPS) 和液相 (LPPS) 方法. 每个都为高效的酸生产提供了独特的优势,满足全球需求.
科学领域:
- 生物化学 生物化学
- 有机化学 有机化学
- 合成化学 合成化学
背景情况:
- 类是具有多种应用的关键生物分子.
- 全球高需求需要高效的合成方法.
研究的目的:
- 概述和比较合成的主要方法.
- 突出每个合成方法的优点.
主要方法:
- 经典的溶液阶段合成 (CSPS)
- 固体相合成 (SPPS) 是一种
- 液相合成 (LPPS) 是一种
主要成果:
- 对于大规模的化物生产来说,CSPS是有利的.
- SPPS提供了自动化和高效率.
- LPPS将溶液相简单与使用可溶性标签的代合成相结合.
结论:
- 选择合成方法取决于具体的应用要求.
- 每种方法都为制造提供了一套独特的好处.
相关概念视频
Nomenclature of Carboxylic Acid Derivatives: Amides and Nitriles
4.3K
Naming Amides
The IUPAC and common names of amides are derived from the parent carboxylic acid, by replacing the suffix “oic acid” and “ic acid,” respectively, with “amide.” In the following example, the IUPAC name ethanamide is derived from ethanoic acid, and the common name, acetamide, is obtained from acetic acid.
The IUPAC and common names of amides are derived from the parent carboxylic acid, by replacing the suffix “oic acid” and “ic acid,” respectively, with “amide.” In the following example, the IUPAC name ethanamide is derived from ethanoic acid, and the common name, acetamide, is obtained from acetic acid.
4.3K
Prochirality
4.0K
The concept of prochirality leads to the nomenclature of the individual faces of a molecule and plays a crucial role in the enantioselective reaction. It is a concept where two or more achiral molecules react to produce chiral products. A typical process is the reaction of an achiral ketone to generate a chiral alcohol. Here, the achiral reactant reacts with an achiral reducing agent, sodium borohydride, to generate an equimolar mixture of the chiral enantiomers of the product. For example, an...
4.0K
Nomenclature of Carboxylic Acid Derivatives: Acid Halides, Esters, and Acid Anhydrides
4.7K
Naming Acid Halides
The IUPAC and common names of acid halides are derived from the corresponding carboxylic acids, by changing “ic acid” to “yl halide.” For example, as shown below, the IUPAC name ethanoyl chloride is derived from ethanoic acid, and the common name, acetyl chloride, is obtained from acetic acid.
The IUPAC and common names of acid halides are derived from the corresponding carboxylic acids, by changing “ic acid” to “yl halide.” For example, as shown below, the IUPAC name ethanoyl chloride is derived from ethanoic acid, and the common name, acetyl chloride, is obtained from acetic acid.
4.7K
Nomenclature of Primary Amines
3.7K
Primary, secondary, and tertiary amines are compounds consisting of one, two, and three alkyl groups connected to the amino group (–NH2), respectively. As depicted in Figure 1, the common name of the primary amines is obtained by adding the suffix -amine to the alkyl substituent attached to the amino group as the corresponding alkylamine.
3.7K
Nomenclature of Secondary and Tertiary Amines
4.2K
The secondary and tertiary amines are derivatives of ammonia, where two and three of its hydrogens are replaced by alkyl groups, respectively. Secondary and tertiary amines can be symmetrical with identical alkyl groups attached to the nitrogen atom or unsymmetrical when more than one type of alkyl group is present. The standard nomenclature of secondary and tertiary amines is similar to the names given to the primary amines. They are generally named alkylamines. As depicted in Figure 1, for...
4.2K
IUPAC Nomenclature of Carboxylic Acids
10.2K
IUPAC names of carboxylic acids are systematically derived following a few rules discussed below.
For acyclic saturated monocarboxylic acids, the longest hydrocarbon chain containing the –COOH carbon is identified as the parent chain. Then, the last -e of the parent hydrocarbon name is replaced with a suffix -oic acid.
For acyclic saturated monocarboxylic acids, the longest hydrocarbon chain containing the –COOH carbon is identified as the parent chain. Then, the last -e of the parent hydrocarbon name is replaced with a suffix -oic acid.
10.2K


