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Coordination Compounds and Nomenclature02:54

Coordination Compounds and Nomenclature

25.7K
In most main group element compounds, the valence electrons of the isolated atoms combine to form chemical bonds that satisfy the octet rule. For instance, the four valence electrons of carbon overlap with electrons from four hydrogen atoms to form CH4. The one valence electron leaves sodium and adds to the seven valence electrons of chlorine to form the ionic formula unit NaCl (Figure 1a). Transition metals do not normally bond in this fashion. They primarily form coordinate covalent bonds, a...
25.7K
Ionic Crystal Structures02:42

Ionic Crystal Structures

16.6K
Ionic crystals consist of two or more different kinds of ions that usually have different sizes. The packing of these ions into a crystal structure is more complex than the packing of metal atoms that are the same size.
Most monatomic ions behave as charged spheres, and their attraction for ions of opposite charge is the same in every direction. Consequently, stable structures for ionic compounds result (1) when ions of one charge are surrounded by as many ions as possible of the opposite...
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Valence Bond Theory02:42

Valence Bond Theory

10.8K
Coordination compounds and complexes exhibit different colors, geometries, and magnetic behavior, depending on the metal atom/ion and ligands from which they are composed. In an attempt to explain the bonding and structure of coordination complexes, Linus Pauling proposed the valence bond theory, or VBT, using the concepts of hybridization and the overlapping of the atomic orbitals. According to VBT, the central metal atom or ion (Lewis acid) hybridizes to provide empty orbitals of suitable...
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Metal-Ligand Bonds02:51

Metal-Ligand Bonds

23.5K
The hemoglobin in the blood, the chlorophyll in green plants, vitamin B-12, and the catalyst used in the manufacture of polyethylene all contain coordination compounds. Ions of the metals, especially the transition metals, are likely to form complexes.
In these complexes, transition metals form coordinate covalent bonds, a kind of Lewis acid-base interaction in which both of the electrons in the bond are contributed by a donor (Lewis base) to an electron acceptor (Lewis acid). The Lewis acid in...
23.5K
Coordination Number and Geometry02:57

Coordination Number and Geometry

18.5K
For transition metal complexes, the coordination number determines the geometry around the central metal ion. Table 1 compares coordination numbers to molecular geometry. The most common structures of the complexes in coordination compounds are octahedral, tetrahedral, and square planar.
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Lattice Centering and Coordination Number02:33

Lattice Centering and Coordination Number

11.2K
The structure of a crystalline solid, whether a metal or not, is best described by considering its simplest repeating unit, which is referred to as its unit cell. The unit cell consists of lattice points that represent the locations of atoms or ions. The entire structure then consists of this unit cell repeating in three dimensions. The three different types of unit cells present in the cubic lattice are illustrated in Figure 1.
Types of Unit Cells
Imagine taking a large number of identical...
11.2K

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Updated: Dec 22, 2025

Preparation of Highly Porous Coordination Polymer Coatings on Macroporous Polymer Monoliths for Enhanced Enrichment of Phosphopeptides
10:27

Preparation of Highly Porous Coordination Polymer Coatings on Macroporous Polymer Monoliths for Enhanced Enrichment of Phosphopeptides

Published on: July 14, 2015

10.4K

充電されたコーディネーションケージベースの多孔塩

Eric J Gosselin1, Gerald E Decker1, Alexandra M Antonio1

  • 1Department of Chemistry and Biochemistry, University of Delaware, Newark, Delaware 19716, United States.

Journal of the American Chemical Society
|May 6, 2020
PubMed
まとめ

研究者らは 多孔塩を用いた 混合機能の多孔性物質を作る 新しい方法を開発しました このアプローチは,充電されたケージの調整可能な比率を可能にし,ガス吸収を向上させ,カスタマイズされた多孔質固体の広範な適用性を提供します.

科学分野:

  • 材料科学
  • 超分子化学
  • ナノテクノロジー

背景:

  • メタル・オーガニック・フレームワーク (MOF) と多孔な調整ケージは高度な調節性を提供しますが,混合機能の材料を合成することは困難です.
  • 現在の方法はしばしば偶然性,合成後の改変,または複雑なリガンド設計に依存しています.

研究 の 目的:

  • 混合機能の金属有機材料を合成するための新しい制御された方法を導入する.
  • 陽気なイオン分子から 陽気な塩の生成を証明する

主な方法:

  • カチオンとアニオンの有孔イオン分子を組み合わせて,有孔塩を調製する.
  • 結果として得られる二重の多孔性の塩物質の特徴.

主要な成果:

  • 合成された多孔塩は,カチオンとアニオンケージの調整可能な比率を持つフレームのような構造を示します.
  • 材料は親のケージのスペクトルサインを示しています.
  • 単一の出発材料と比較して,ガス吸収能力の増加が観察されました.

結論:

  • この多孔塩のアプローチは,混合機能の多孔固体の制御された合成のための新しい経路を提供します.

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A Salt-Templated Synthesis Method for Porous Platinum-based Macrobeams and Macrotubes
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A Salt-Templated Synthesis Method for Porous Platinum-based Macrobeams and Macrotubes

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Microfluidic Pneumatic Cages: A Novel Approach for In-chip Crystal Trapping, Manipulation and Controlled Chemical Treatment
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Microfluidic Pneumatic Cages: A Novel Approach for In-chip Crystal Trapping, Manipulation and Controlled Chemical Treatment

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関連する実験動画

Last Updated: Dec 22, 2025

Preparation of Highly Porous Coordination Polymer Coatings on Macroporous Polymer Monoliths for Enhanced Enrichment of Phosphopeptides
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A Salt-Templated Synthesis Method for Porous Platinum-based Macrobeams and Macrotubes
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A Salt-Templated Synthesis Method for Porous Platinum-based Macrobeams and Macrotubes

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Microfluidic Pneumatic Cages: A Novel Approach for In-chip Crystal Trapping, Manipulation and Controlled Chemical Treatment
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Microfluidic Pneumatic Cages: A Novel Approach for In-chip Crystal Trapping, Manipulation and Controlled Chemical Treatment

Published on: July 12, 2016

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  • この方法は,多孔イオンの様々なファミリーに広く適用され,マテリアルデザインを可能にします.