相关实验视频
Updated: Jun 7, 2025

11:00
Determination of the Gas-phase Acidities of Oligopeptides
Published on: June 24, 2013
11.1K
用离子流动性光谱学和计算研究的热分解和大气压的化学电离化氨酸
Manijeh Tozihi1, Hamed Bahrami1, Masoumeh Garmabdashti1
1Department of Chemistry, University of Zanjan, Zanjan, 38791-45371, Iran.
Heliyon
|November 18, 2024
概括
由于L-氨酸的热分解,产生氨,形成添加离子. 离子流动性光谱和DFT显示,质子化主要发生在中,影响观察到的光谱.
科学领域:
- 分析化学 分析化学
- 物理化学 物理化学
- 生物化学 生物化学
背景情况:
- 氨基酸是基本的生物分子.
- 了解它们的热分解对于分析和生化应用至关重要.
- 离子移动光谱 (IMS) 是分析离子的强大工具.
研究的目的:
- 为了研究热分解对L-氨酸离子流动性光谱的影响.
- 为了确定热分解产物及其与质子氨酸的相互作用.
- 用计算方法阐明这些相互作用的结构和能量方面.
主要方法:
- 离子移动谱仪 (IMS) 具有注射后延迟系统.
- 密度函数理论 (DFT) 用于计算分析.
- 对于质子化物种的热力学稳定性预测.
主要成果:
- IMS光谱显示了质子化异构体和添加离子.
- 据DFT证实,质突变在阿兰酸中比氧质突变更稳定.
- L-alanine的热分解产生氨,导致氨 adduct 的形成.
结论:
- 质子化部位在热应力下显著影响氨酸的离子行为.
- 在分解过程中形成氨,在离子生成中起着关键作用.
- 这项研究增强了对氨基酸热分解的理解,以获得分析和生化见解.
相关概念视频
Chemical Ionization (CI) Mass Spectrometry
695
The molecular ion peak of a molecule in the mass spectrum provides vital information for molecular identification. However, conventional electron impact ionization can lead to the rapid dissociation of some molecular ions before they reach the detector. A milder ionization method is required to increase the lifetime of such ionized analyte molecules. Chemical ionization (CI) is a gas-phase protonation reaction useful for mass-analyzing analyte molecules that are easily protonated to yield the...
695
Mass Spectrometry of Amines
4.1K
In mass spectroscopy, amines undergo fragmentation to give parent ions with odd molecule weights. This observed mass spectrum follows the nitrogen rule: a molecule with an odd number of nitrogen atoms produces a parent ion with an odd molecular weight. The remaining fragments have an even mass.
Amines undergo fragmentation through α cleavage, producing nitrogen-containing cations—iminium ions—and alkyl radicals. Mass spectra of aromatic and cyclic aliphatic amines exhibit...
Amines undergo fragmentation through α cleavage, producing nitrogen-containing cations—iminium ions—and alkyl radicals. Mass spectra of aromatic and cyclic aliphatic amines exhibit...
4.1K
Mass Spectrometry: Alkyne Fragmentation
1.5K
The fragmentation of alkynes preferentially occurs at the carbon–carbon bond between the α and β carbon of the alkyne bond to generate a 3-propynyl cation (or propargyl cation). In terminal alkynes, there is the only type of fragmentation that yields the 3-propynyl cation. The unsubstituted 3-propynyl cation exhibits a peak at a mass-to-charge ratio of 39. In internal alkynes, the 3-propynyl cation is substituted. For example, 2-pentyne fragments into methyl-substituted...
1.5K
Mass Spectrometry: Alkene Fragmentation
2.5K
Alkenes lose one electron from the unsaturated π bond upon ionization and form stable molecular ions. Further fragmentation of alkenes occurs through three different reaction pathways. The most prominent fragmentation is the cleavage at the allylic position. The resultant allylic carbocation is resonance stabilized. In the mass spectra of terminal alkenes, this fragment appears at a mass-to-charge ratio of 41. In the internal alkenes, where there are two choices of allylic cleavage, the...
2.5K
Mass Spectrometry: Long-Chain Alkane Fragmentation
1.5K
The molecular ions of linear alkanes prefer to fragment at the carbon-carbon bond away from the end of the chain since the cleavage of an inner bond creates a stable carbocation and a stable radical. Consequently, the mass signals of linear alkanes feature intense peaks in the middle of the mass-to-charge ratio plot with weaker peaks on either end. The fragmentation of each carbon-carbon bond with the release of a methyl group in each splitting leads to prominent peaks in the mass spectra...
1.5K
Mass Spectrometry: Alcohol Fragmentation
3.3K
Alcohols (R-OH) ionize to lose one non-bonded electron from the oxygen atom, forming molecular ions. Due to their tendency to fragment rapidly, the intensity of the molecular ion peak in the mass spectrum is weak or sometimes absent. The fragmentation patterns for alcohols occur in two ways, i.e. ⍺-cleavage and dehydration. During ⍺-cleavage, the bond at the ⍺-position adjacent to the hydroxyl group cleaves to give a resonance-stabilized cation and a radical. However,...
3.3K

