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関連する概念動画

Molecules and Compounds02:38

Molecules and Compounds

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Atoms and Molecules
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Chemical Bonds02:40

Chemical Bonds

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Atoms participate in a chemical bond formation to acquire a completed valence-shell electron configuration similar to that of the noble gas nearest to it in atomic number. Ionic, covalent, and metallic bonds are some of the important types of chemical bonds. Bond energy and bond length determine the strength of a chemical bond.
Types of Chemical Bonds
An ionic bond is formed due to electrostatic attraction between cations and anions. Often, the ions are formed by the transfer of electrons...
24.0K
Covalent Bonds01:08

Covalent Bonds

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Overview
When two atoms share electrons to complete their valence shells, they create a covalent bond. An atom's electronegativity—the force with which shared electrons are pulled towards an atom—determines how the electrons are shared. Molecules formed with covalent bonds can be either polar or nonpolar. Atoms with similar electronegativities form nonpolar covalent bonds; the electrons are shared equally. Atoms with different electronegativities share electrons unequally,...
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Covalent Bonds01:29

Covalent Bonds

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Overview
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Covalent Bonding and Lewis Structures02:46

Covalent Bonding and Lewis Structures

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Compared to ionic bonds, which results from the transfer of electrons between metallic and nonmetallic atoms, covalent bonds result from the mutual attraction of atoms for a “shared” pair of electrons.
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Introduction to Chemical Bonds01:01

Introduction to Chemical Bonds

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Chemical Bonds
The electrons of the outermost energy level determine the energetic stability of the atom and its tendency to form chemical bonds with other atoms. The innermost electron shell has a maximum capacity of two electrons, but the next two electron shells can each have a maximum of eight electrons. This is known as the octet rule, which states that, with the exception of the innermost shell, atoms are most stable energetically when they have eight electrons in their valence shell, the...
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Synthesis of Information-bearing Peptoids and their Sequence-directed Dynamic Covalent Self-assembly
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分子を超えた共性化学

Juncong Jiang1, Yingbo Zhao1, Omar M Yaghi1,2

  • 1Department of Chemistry, University of California-Berkeley, Materials Sciences Division, Lawrence Berkeley National Laboratory, and Kavli Energy NanoSciences Institute at Berkeley , Berkeley, California 94720, United States.

Journal of the American Chemical Society
|February 11, 2016
PubMed
まとめ

協和有機フレームワーク (COF) と金属有機フレームワーク (MOF) は,結晶の拡張構造の正確な構築を可能にします. これらの高度な材料は 調節可能な多孔性と化学的な機能性を 多様な用途に備えています

科学分野:

  • 材料科学
  • 化学について
  • ナノテクノロジー

背景:

  • 共同化学は伝統的に離散分子に焦点を当てている.
  • 分子単位を結晶固体に結びつけることは,重要な結晶化課題です.
  • 金属有機フレームワーク (MOF) と共性有機フレームワーク (COF) は,共性化学を拡張された構造に拡張するパラダイムシフトを表しています.

研究 の 目的:

  • MOFとCOF合成における結晶化問題を克服する戦略の開発を強調する.
  • 結晶の拡張構造から生じるユニークな性質と応用を紹介する.
  • 設計された多孔性と化学的複雑性を持つ機能的な材料を作成する際のMOFとCOFの可能性を強調する.

主な方法:

  • 結合固体の形成における結晶化問題を克服するための合成戦略の開発.
  • オープンで結晶的なフレームワークを作成します.
  • 合成後のMOFとCOFの共性機能化により,化学的複雑性が導入される.

主要な成果:

  • 調節可能な多孔性の多くの結晶MOFとCOFの合成に成功した.
  • フレームワークの共性反応の実証,結晶性および多孔性を保持する.
  • 無機ナノ結晶を包み込むナノMOFなど,よく定義されたメソスコピック構造の作成,それらの特性を強化する.

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関連する実験動画

Last Updated: Mar 26, 2026

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結論:

  • MOFとCOFは,フレームワークのアーキテクチャ,多孔性,および機能性を正確に制御できます.
  • これらの材料は,高度な化学合成と材料設計のためのプラットフォームを提供します.
  • 合成後の改造を行う能力は,特異な特性を有する新しい機能的材料を作成するための道を開きます.