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相关概念视频

Alkynes to Carboxylic Acids: Oxidative Cleavage02:01

Alkynes to Carboxylic Acids: Oxidative Cleavage

5.1K
Alkynes undergo oxidative cleavage in the presence of oxidizing reagents like potassium permanganate and ozone. The triple bond — one σ bond and two π bonds — is completely cleaved, and the alkyne is oxidized to carboxylic acids. When warm and basic aqueous potassium permanganate is used as an oxidizing agent, alkynes are first converted to carboxylate salts via an unstable α-diketone intermediate. Further, a mild acid treatment protonates the carboxylate anions...
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Mass Spectrometry: Molecular Fragmentation Overview01:20

Mass Spectrometry: Molecular Fragmentation Overview

5.2K
The ionization of a molecule into a molecular ion inside the mass spectrometer causes instability in the molecule's structure due to the loss of an electron. This eventually leads to the fragmentation or breaking of some bonds in the molecule. The fragmentation occurs predominantly at specific bonds to yield relatively stable fragments.
One type of fragmentation pattern is the cleavage of a single bond in the molecular ion. The cleavage leads to a radical and a cation. The cleavage can occur at...
5.2K
Mass Spectrometry: Branched Alkane Fragmentation01:29

Mass Spectrometry: Branched Alkane Fragmentation

1.7K
This lesson delves into the mass spectrometry of branched alkane fragmentation. Branched alkanes possess secondary or tertiary carbon atoms, which generate relatively stable carbocations if the cleavage occurs at the branching point. The high stability of carbocations drives the instant fragmentation of branched alkanes. Accordingly, the branched alkane's molecular ion peak is very weak or invisible in the mass spectra, especially in comparison to a linear alkane.
1.7K
Mass Spectrometry: Cycloalkane Fragmentation01:05

Mass Spectrometry: Cycloalkane Fragmentation

2.3K
In mass spectrometry, cycloalkanes exhibit distinct fragmentation patterns due to the inherent stability of their molecular ions compared to linear or branched alkanes. The ring structure of cycloalkanes provides additional stability to the molecular ions, often resulting in prominent ion peaks in the mass spectrum.
For example, cyclohexane molecular ions have a mass-to-charge ratio (m/z) of 84, which tends to produce a stronger signal than linear alkanes like hexane. This stability comes from...
2.3K
Mass Spectrometry: Cycloalkene Fragmentation00:54

Mass Spectrometry: Cycloalkene Fragmentation

1.5K
The molecular ions of cycloalkenes undergo fragmentation via a retro-Diels–Alder reaction.
1.5K
Mass Spectrometry: Carboxylic Acid, Ester, and Amide Fragmentation01:01

Mass Spectrometry: Carboxylic Acid, Ester, and Amide Fragmentation

2.6K
The fragmentation patterns observed for compounds such as carboxylic acids, esters, and amides in the mass spectra include ⍺-cleavage and McLafferty rearrangement. Fragmentation by ⍺-cleavage preferentially occurs at the carbon-carbon bond at the ⍺-position next to the carboxylic group to generate a neutral radical and a cation. Long chain compounds with hydrogen at their γ-carbon undergo McLafferty rearrangement to give a radical cation and a neutral alkene.
For example,...
2.6K

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Preparation of Carbon Nanosheets at Room Temperature
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Preparation of Carbon Nanosheets at Room Temperature

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碳-碳键的吸附引起的裂变

Sergei S Sheiko1, Frank C Sun, Adrian Randall

  • 1Department of Chemistry, University of North Carolina at Chapel Hill, Chapel Hill, North Carolina 27599-3290, USA. sergei@email.unc.edu

Nature
|March 10, 2006
PubMed
概括

具有刷状结构的宏分子可以在基质吸附时自发地打破共价键. 这种吸附诱导的骨干裂变是由于最大化的侧链相互作用而发生的,产生足够的张力来破坏碳-碳键.

科学领域:

  • 聚合物化学 聚合物化学
  • 材料科学 材料科学 材料科学
  • 表面科学是一门学科.

背景情况:

  • 共价碳-碳键非常强,需要显著的力 (纳米牛顿) 破裂.
  • 破解单一共价键的先前方法包括扩展流和纳米探针拉伸.
  • 具有分支架构的宏分子,如刷子和树枝体,用于各种表面应用.

研究的目的:

  • 为了调查宏分子对基质的吸附是否可以诱导共价键破裂.
  • 了解在分支宏分子中吸附诱导的键分裂背后的机制.
  • 为了确定发生自发脊椎破裂的条件.

主要方法:

  • 类似刷子的大分子在基板上的吸附.
  • 使用单分子技术 (隐含) 分析形状变形和键断裂.
  • 理论上将键断裂归因于最大化的侧链-基质相互作用和诱导的张力.

主要成果:

  • 简单的吸附刷状大分子导致形状变形.
  • 观察到巨分子脊柱内共价键的自发破裂.
  • 断裂是由于侧链扩散和与基质相互作用的最大化所产生的张力造成的.

结论:

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  • 分支巨分子的吸附可以导致自发的脊柱裂变.
  • 足够的侧链密度和基质相互作用对于诱导键断裂至关重要.
  • 在设计面向的分支大分子时,必须考虑这种现象,以控制降解或确保有针对性的破裂.