来自人为和生物源排放源的烯反体比率
Shan Gu1, Wentai Luo2, Avisa Charmchi1,3
1Ecology and Evolutionary Biology, University of California Irvine, Irvine, California 92697, United States.
概括
分析利蒙反体比率有助于区分挥发性化学产品和针叶树的排放. 这种方法改善了城市环境中的香气来源和空气质量的跟踪.
科学领域:
- 环境化学环境化学
- 大气科学 大气科学
背景情况:
- 挥发性化学产品 (VCP) 导致城市空气污染.
- 是VCP的标记物,但也由城市针叶树发射,使排放估计变得复杂.
研究的目的:
- 评估使用利蒙反体比率来区分VCP和针叶树的排放源.
- 改善风险控制中心的来源分配和排放清单编制.
主要方法:
- 来自VCP和针叶树的烯的量化反体比.
- 使用气体染色学与奇拉柱和质谱学.
- 分析室内和室外空气样本.
主要成果:
- 在VCP和针叶树之间,烯的反体比有显著的差异.
- (+) - 烯主导了VCP排放 (>97%),而针叶树的排放显示出不同的比例.
- 室外空气中含有VCP和针叶烯来源;室内空气主要来自VCP.
结论:
- 烯反体分析是区分VCP和针叶树排放的一个有价值的工具.
- 这种技术可以提高城市地区VCP排放库存的准确性.
相关概念视频
¹H NMR Chemical Shift Equivalence: Enantiotopic and Diastereotopic Protons
1.7K
Replacing each alpha-hydrogen in chloroethane by bromine (or a different functional group) yields a pair of enantiomers. Such protons are called prochiral or enantiotopic and are related by a mirror plane. Enantiotopic protons are chemically equivalent in an achiral environment. Because most proton NMR spectra are recorded using achiral solvents, enantiotopic hydrogens yield a single signal.
In chiral compounds such as 2-butanol, replacing the methylene hydrogens at C3 produces a pair of...
In chiral compounds such as 2-butanol, replacing the methylene hydrogens at C3 produces a pair of...
1.7K
Stereochemical Effects of Enolization
2.0K
The chiral α-carbon of the carbonyl compound is the stereocenter of the molecule. As shown in the figure below, when such a carbonyl compound undergoes racemization under an acidic or basic condition, an achiral enol is formed.
2.0K
Properties of Enantiomers and Optical Activity
17.1K
It is essential to understand the difference between chiral and achiral interactions and the implications thereof in optical activity and their applications. Just as our feet, which are chiral, interact uniquely with chiral objects, such as a pair of shoes, but identically with achiral socks, enantiomers of a molecule exhibit different properties only when they interact with other chiral media. An example of a significant implication from this facet is the phenomenon known as optical activity,...
17.1K
Naming Enantiomers
20.4K
The naming of enantiomers employs the Cahn–Ingold–Prelog rules that involve assigning priorities to different substituent groups at a chiral center. Each enantiomer, being a distinct molecule, is assigned a unique name by the Cahn–Ingold–Prelog (CIP) rules, also called the R–S system. The prefix R- or S- attached to the chiral centers in an enantiomer is dependent on the spatial arrangement of the four substituents on the chiral center. The R–S system...
20.4K
Radical Halogenation: Stereochemistry
3.7K
Stereochemistry is the study of the different spatial arrangements of atoms in a given molecule. The stereochemistry of radical halogenations can be understood from three different situations:
Halogenation to form a new chiral center:
Halogenation to form a new chiral center:
3.7K
Prochirality
3.8K
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...
3.8K


