在乙醇/水溶液中的离子配对被通过电泳和扩散NMR探测
Fredrik Hallberg1, István Furó, Peter Stilbs
1Division of Physical Chemistry and Industrial NMR Centre, Department of Chemistry, Royal Institute of Technology, SE-10044 Stockholm, Sweden.
Journal of the American Chemical Society
|September 11, 2009
概括
我们开发了一种使用NMR光谱学的新方法来量化溶液中的离子配对. 这种技术揭示了霍夫迈斯特对离子配对的效应,双价离子比单价离子更强的配对.
科学领域:
- 物理化学 物理化学
- 解决方案化学 解决方案化学
- 频谱学是一种光谱学.
背景情况:
- 离子配对对于理解溶液的行为至关重要.
- 量化离子配对是一个挑战.
- 霍夫迈斯特效应描述了离子如何影响蛋白质溶解度和其他特性.
研究的目的:
- 开发一种量化方法来测量溶液中的平均离子电荷.
- 使用这种方法来评估离子配对.
- 为了研究霍夫迈斯特对离子配对的影响.
主要方法:
- 组合电泳核磁共振 (NMR) 和扩散核磁共振实验.
- 溶液中的离子所携带的平均电荷.
- 在95%乙醇/水溶液中分析离子配对.
主要成果:
- 成功测量平均离子电荷以表明离子配对.
- 在单价离子和四甲基离子之间的离子配对中观察到霍夫迈斯特关系.
- 发现双价硫酸盐离子表现出比单价离子更强的离子配对.
结论:
- 电泳和扩散NMR提供了对离子配对的定量测量.
- 乙醇/水溶液中的离子配对遵循霍夫迈斯特趋势.
- 双价离子形成更强的离子对,而不是与四甲基离子的单价离子形成更强的离子对.
相关概念视频
¹H NMR of Labile Protons: Deuterium (²H) Substitution
This lesson illustrates the role of deuterium substitution in simplifying the NMR spectrum of compounds comprising labile protons. One method employed is the use of deuterium. Amongst the three isotopes of hydrogen, deuterium (2H) has a nucleus composed of one proton and one neutron. When the D2O solvent is added to a pure dry ethanol solution, its labile proton is substituted with deuterium.
¹H NMR of Labile Protons: Temporal Resolution
Protons bonded to heteroatoms such as nitrogen and oxygen exhibit a range of chemical shift values. This is due to the varying degree of hydrogen bonding between the proton and the heteroatom in other molecules. The extent of hydrogen bonding affects the electron density around the proton, thereby giving different chemical shift values for the protons in the proton NMR spectrum.
The –OH proton in alcohols typically appears in the range of δ 2 to 5 ppm but can vary depending on the specific...
The –OH proton in alcohols typically appears in the range of δ 2 to 5 ppm but can vary depending on the specific...
¹H NMR Chemical Shift Equivalence: Enantiotopic and Diastereotopic Protons
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...
¹H NMR of Conformationally Flexible Molecules: Variable-Temperature NMR
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.
¹³C NMR: ¹H–¹³C Decoupling
The probability of having two carbon-13 atoms next to each other is negligible because of the low natural abundance of carbon-13. Consequently, peak splitting due to carbon-carbon spin-spin coupling is not observed in spectra. However, protons up to three sigma bonds away split the carbon signal according to the n+1 rule, resulting in complicated spectra.
A broadband decoupling technique is used to simplify these complex, sometimes overlapping, signals. Broadband decoupling relies on a...
A broadband decoupling technique is used to simplify these complex, sometimes overlapping, signals. Broadband decoupling relies on a...
¹³C NMR: Distortionless Enhancement by Polarization Transfer (DEPT)
When proton-coupled carbon-13 spectra are simplified by a broadband proton decoupling technique, structural information about the coupled protons is lost. Distortionless enhancement by polarization transfer (DEPT) is a technique that provides information on the number of hydrogens attached to each carbon in a molecule. While the DEPT experiment utilizes complex pulse sequences, the pulse delay and flip angle are specifically manipulated. The resulting signals have different phases depending on...

