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相关概念视频

Conformations of Cycloalkanes02:29

Conformations of Cycloalkanes

11.4K
Adolf von Baeyer attempted to explain the instabilities of small and large cycloalkane rings using the concept of angle strain — the strain caused by the deviation of bond angles from the ideal 109.5° tetrahedral value for sp3  hybridized carbons. However, while cyclopropane and cyclobutane are strained, as expected from their highly compressed bond angles, cyclopentane is more strained than predicted, and cyclohexane is virtually strain-free. Hence, Baeyer’s theory that...
11.4K
Chair Conformation of Cyclohexane02:02

Chair Conformation of Cyclohexane

14.1K
The chair conformation is the most stable form of cyclohexane due to the absence of angle and torsional strain. The absence of angle strain is a result of cyclohexane’s bond angle being very close to the ideal tetrahedral bond angle of 109.5° in its chair conformer. Similarly, the torsional strain is also absent owing to the perfectly staggered arrangement of bonds.
The hydrogen atoms linked to carbons are arranged in two different axial and equatorial orientations to achieve this...
14.1K
Conformations of Cyclohexane02:11

Conformations of Cyclohexane

11.9K
Cyclohexane does not exist in a planar form due to the high angle and torsional strain it would experience in the planar structure. Instead, it adopts non-planar chair and boat conformations.
The chair form is the most stable and derives its name from its resemblance to the “easy chair.” In the chair conformation, two carbon atoms are arranged out-of-plane — one above and one below, minimizing the torsional strain. In the chair form, the bond angle is very close to the ideal...
11.9K
Stability of Substituted Cyclohexanes02:30

Stability of Substituted Cyclohexanes

12.2K
This lesson discusses the stability of substituted cyclohexanes with a focus on energies of various conformers and the effect of 1,3-diaxial interactions.
The two chair conformations of cyclohexanes undergo rapid interconversion at room temperature. Both forms have identical energies and stabilities, each comprising equal amounts of the equilibrium mixture. Replacing a hydrogen atom with a functional group makes the two conformations energetically non-equivalent.
For example, in...
12.2K
¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR01:15

¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR

1.0K
The axial and equatorial protons in cyclohexane can be distinguished by performing a variable-temperature NMR experiment. In this process, except for one proton, the remaining eleven protons are replaced by deuterium. The deuterium substitution avoids the possible peak splitting caused by the spin-spin coupling between the adjacent protons. The remaining proton flips between the axial and equatorial positions.
1.0K
Cycloalkanes02:28

Cycloalkanes

11.8K
Cycloalkanes are saturated cyclic hydrocarbons with carbon atoms arranged in the form of rings. They have two fewer hydrogen atoms than the corresponding acyclic alkane; therefore, their general formula is CnH2n. The structural formulas of cycloalkanes are simplified using the line-angle representation. The regular polygons are used to represent the cycloalkane rings, with each side representing a carbon-carbon bond.
The IUPAC nomenclature of cycloalkanes follows similar rules that apply to...
11.8K

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Preparation of a Corannulene-functionalized Hexahelicene by CopperI-catalyzed Alkyne-azide Cycloaddition of Nonplanar Polyaromatic Units
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超快速的动态压缩的环素.

Ashutosh Mohan1,2, Ajay K Mishra1,2, S Chaurasia3

  • 1High Pressure and Synchrotron Radiation Physics Division, Bhabha Atomic Research Centre, Mumbai 400085, India.

The Journal of chemical physics
|May 1, 2025
PubMed
概括

超快速压缩揭示了环素的新高压相,环素是能量材料的关键碳化合物. 这项研究绘制了环素的地图.

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科学领域:

  • 材料科学 材料科学 材料科学
  • 物理化学 物理化学
  • 地质物理学 地质物理学

背景情况:

  • 环素是一种和的循环碳化合物,在能量材料中具有潜在的应用.
  • 在极端条件下了解环素的相位图对于其应用至关重要.
  • 以前对环素相变的研究仅限于毫秒时间尺度.

研究的目的:

  • 在超快速动态压缩下研究环素相变.
  • 将动态压缩结果与静态压缩数据进行比较.
  • 提供关于环素高压相稳定性的见解.

主要方法:

  • 激光驱动的冲击压缩以实现纳秒时间尺度的动态压缩.
  • 在现场时间分辨率拉曼光谱来监测相位演变.
  • 静态压缩实验最高可达27 GPa.

主要成果:

  • 观察到结晶到固体I (立方) 阶段大约0.8 GPa.
  • 识别的固体-I → 固体-III (正方体) 过渡在1.1-1.7 GPa之间.
  • 在2.7-4.0 GPa和4.0-5.8 GPa分别检测到过渡到固体-IV (单临床) 和固体-V (三临床) 阶段.
  • 静态压缩结果证实了观察到的相位过渡.

结论:

  • 在超快的动态压缩下,环素表现出明显的相变.
  • 这些发现提供了关于环素高压相稳定性的关键数据.
  • 环素作为研究分子系统相变动态的基准.