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Hydrogen Bonds01:04

Hydrogen Bonds

15.5K
A hydrogen bond is formed when a weakly positive hydrogen atom already bonded to one electronegative atom (for example, the oxygen in the water molecule) is attracted to another electronegative atom from another polar molecule, such as water (H2O), hydrogen fluoride (HF), or ammonia (NH3). The huge electronegativity difference between the H atom (2.1) and the atom to which it is bonded (4.0 for an F atom, 3.5 for an O atom, or 3.0 for an N atom), combined with the very small size of an H atom...
15.5K
Hydrogen Bonds00:26

Hydrogen Bonds

135.7K
Hydrogen bonds are weak attractions between atoms that have formed other chemical bonds. One of these atoms is electronegative, like oxygen, and has a partial negative charge. The other is a hydrogen atom that has bonded with another electronegative atom and has a partial positive charge.
Hydrogen Bonds Control the World!
Because hydrogen has very weak electronegativity when it binds with a strongly electronegative atom, such as oxygen or nitrogen, electrons in the bond are unequally shared....
135.7K
Intermolecular Forces03:13

Intermolecular Forces

74.3K
Atoms and molecules interact through bonds (or forces): intramolecular and intermolecular. The forces are electrostatic as they arise from interactions (attractive or repulsive) between charged species (permanent, partial, or temporary charges) and exist with varying strengths between ions, polar, nonpolar, and neutral molecules. The different types of intermolecular forces are ion–dipole, dipole–dipole, hydrogen bonds, and dispersion; among these, dipole–dipole, hydrogen...
74.3K
IR Spectrum Peak Broadening: Hydrogen Bonding01:23

IR Spectrum Peak Broadening: Hydrogen Bonding

2.0K
The vibrational frequency of a bond is directly proportional to its bond strength. As a result, stronger bonds vibrate at higher frequencies, while weaker bonds vibrate at lower frequencies. The stretching vibration of the strong O–H bond in alcohols and phenols (very dilute solution or gas phase) appears as a sharp peak at 3600–3650 cm−1.
However, the extent of hydrogen bonding influences the observed stretching frequency and band broadening. Intermolecular or intramolecular...
2.0K
Molecular Shape and Polarity03:37

Molecular Shape and Polarity

76.6K
Dipole Moment of a Molecule
76.6K
Aqueous Solutions and Heats of Hydration02:42

Aqueous Solutions and Heats of Hydration

18.5K
Water and other polar molecules are attracted to ions. The electrostatic attraction between an ion and a molecule with a dipole is called an ion-dipole attraction. These attractions play an important role in the dissolution of ionic compounds in water.
When ionic compounds dissolve in water, the ions in the solid separate and disperse uniformly throughout the solution because water molecules surround and solvate the ions, reducing the strong electrostatic forces between them. This process...
18.5K

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Updated: Mar 2, 2026

From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
06:44

From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding

Published on: March 24, 2018

69.7K

プロトイオン性液体におけるフォノン型水素結合モード

Judith Reichenbach1, Stuart A Ruddell1, Mario González-Jiménez1

  • 1School of Chemistry, WestCHEM, University of Glasgow , Glasgow G12 8QQ, U.K.

Journal of the American Chemical Society
|May 18, 2017
PubMed
まとめ

遠赤外線と超高速光学ケール効果スペクトロスコピーは,イオン性液体のフォノンモードを明らかにします. これらの発見は液体の水との類似性を強調し,イオン液体のスペクトルを再解釈する必要があります.

科学分野:

  • 物理化学
  • スペクトロスコーピー
  • 材料科学

背景:

  • ギガヘルツからテラヘルツの周波数の赤外線とラーマンスペクトルは,イオン性液 (IL) の特性についての洞察を提供します.
  • 拡散,リブラーション,および振動モードからの複雑なスペクトル貢献は,クーロンビックおよび水素結合のようなIL相互作用の分析を複雑にする.

研究 の 目的:

  • イオン性液体内の特定のスペクトル信号を分離し,識別する.
  • スペクトル解析におけるイオン対称性の役割を調査する.
  • プロトイオン液体と液体の水の動態を比較する.

主な方法:

  • 遠赤外線スペクトロスコーピーの応用
  • 超高速光学カール効果スペクトロスコーピーを使った.
  • 異なった対称性のイオンを研究し,スペクトルの特徴を分離した.

主要な成果:

  • イオン性液体における縦横の光学フォノンモードの存在を証明した.
  • アルキルアモニウムベースのプロティックイオン液体と液体の水の間の重要な類似性を特定しました.
  • すべての研究されたイオン液体における フォノンモードの普遍的な存在を確認した.

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Vibrational Spectra of a N719-Chromophore/Titania Interface from Empirical-Potential Molecular-Dynamics Simulation, Solvated by a Room Temperature Ionic Liquid

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A Protocol for Safe Lithiation Reactions Using Organolithium Reagents
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A Protocol for Safe Lithiation Reactions Using Organolithium Reagents

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関連する実験動画

Last Updated: Mar 2, 2026

From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding
06:44

From Molecules to Materials: Engineering New Ionic Liquid Crystals Through Halogen Bonding

Published on: March 24, 2018

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Vibrational Spectra of a N719-Chromophore/Titania Interface from Empirical-Potential Molecular-Dynamics Simulation, Solvated by a Room Temperature Ionic Liquid
08:54

Vibrational Spectra of a N719-Chromophore/Titania Interface from Empirical-Potential Molecular-Dynamics Simulation, Solvated by a Room Temperature Ionic Liquid

Published on: January 25, 2020

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A Protocol for Safe Lithiation Reactions Using Organolithium Reagents
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A Protocol for Safe Lithiation Reactions Using Organolithium Reagents

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結論:

  • フォノンモードはイオン液体のスペクトルに普遍的な特徴です.
  • これらのモードの存在は,イオン液体のスペクトルがどのように解釈されるかを再評価する必要があります.
  • イオン性液体は,液体の水,特にアルキルアモニウムベースのプロティックイオン性液体とダイナミックな特性を共有しています.