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関連する概念動画

Structures of Solids02:22

Structures of Solids

Solids in which the atoms, ions, or molecules are arranged in a definite repeating pattern are known as crystalline solids. Metals and ionic compounds typically form ordered, crystalline solids. A crystalline solid has a precise melting temperature because each atom or molecule of the same type is held in place with the same forces or energy. Amorphous solids or non-crystalline solids (or, sometimes, glasses) which lack an ordered internal structure and are randomly arranged. Substances that...
Ionic Crystal Structures02:42

Ionic Crystal Structures

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...
Metallic Solids02:37

Metallic Solids

Metallic solids such as crystals of copper, aluminum, and iron are formed by metal atoms. The structure of metallic crystals is often described as a uniform distribution of atomic nuclei within a “sea” of delocalized electrons. The atoms within such a metallic solid are held together by a unique force known as metallic bonding that gives rise to many useful and varied bulk properties.
All metallic solids exhibit high thermal and electrical conductivity, metallic luster, and malleability. Many...
Lattice Centering and Coordination Number02:33

Lattice Centering and Coordination Number

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...
Crystal Growth: Principles of Crystallization01:25

Crystal Growth: Principles of Crystallization

Crystallization is a phase transformation process in which crystals are precipitated from a supersaturated solution or formed from other sources. During crystallization, atoms or molecules arrange themselves into a well-defined, rigid crystal lattice to minimize energy.
Initiating crystallization involves manipulating the concentration of the solute and the temperature of the solution. Since crystal growth occurs when the ratio of concentration and solubility of the solute in the solvent – the...
Unit Cells01:18

Unit Cells

A crystal's internal structure is an orderly array of atoms, ions, or molecules, and the details of this array significantly influence the solid's properties. In a crystal, periodically repeating 'structural motifs' - which could be atoms, molecules, or groups thereof - create a 'space lattice.' This is essentially a three-dimensional, infinite array of points, each surrounded by its neighbors in an identical way, forming the basic structure of the crystal.A 'unit cell' is a theoretical...

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関連する実験動画

Updated: Jul 19, 2026

Preparation of Large-area Vertical 2D Crystal Hetero-structures Through the Sulfurization of Transition Metal Films for Device Fabrication
08:50

Preparation of Large-area Vertical 2D Crystal Hetero-structures Through the Sulfurization of Transition Metal Films for Device Fabrication

Published on: November 28, 2017

バイナリコロイド結晶の層次的な成長.

Krassimir P Velikov1, Christina G Christova, Roel P A Dullens

  • 1Soft Condensed Matter, Debye Institute, Utrecht University, Princetonlaan 5, 3584 CC Utrecht, Netherlands. k.p.velikov@phys.uu.nl

Science (New York, N.Y.)
|April 6, 2002
PubMed
まとめ

研究者は,シンプルな層ごとに層の方法を使用して,制御された指向のバイナリコロイド結晶を作成しました. この技術により,大粒 (L) と小粒 (S) の正確な配置が可能になり,LS2,LS,LS3の超構造のような構造を形成します.

科学分野:

  • マテリアルサイエンス 材料科学
  • ナノテクノロジー ナノテクノロジー
  • コロイド科学 コロイド科学

背景:

  • コロイド結晶は,光子アプリケーションに不可欠です.
  • 水晶の向きを制御することは,高度な材料設計において極めて重要です.
  • バイナリコロイド結晶の製造のための既存の方法は,しばしば複雑です.

研究 の 目的:

  • バイナリコロイド結晶の制御された成長のための単純な層次プロセスを開発する.
  • 結晶の向きとステキオメトリーを正確に制御するために.
  • バイナリコロイド系における新しい上部構造の形成を調査する.

主な方法:

  • 層ずつ組立する技術を用いる.
  • さまざまな組成と大きさの球体を使用しています.
  • 最初の層のテンプレート効果と乾燥中の表面張力を活用します.

主要な成果:

  • LS2とLSのステキオメトリーで順番の良い単一バイナリコロイド結晶を成功裏に生成しました.
  • LS3の上部構造の形成を観察しました.
  • 1つのコンポーネントの選択的除去が示され,密封されていない六角形のコロイド結晶を作成します.

さらに関連する動画

A Standard and Reliable Method to Fabricate Two-Dimensional Nanoelectronics
07:12

A Standard and Reliable Method to Fabricate Two-Dimensional Nanoelectronics

Published on: August 28, 2018

Theoretical Calculation and Experimental Verification for Dislocation Reduction in Germanium Epitaxial Layers with Semicylindrical Voids on Silicon
06:57

Theoretical Calculation and Experimental Verification for Dislocation Reduction in Germanium Epitaxial Layers with Semicylindrical Voids on Silicon

Published on: July 17, 2020

関連する実験動画

Last Updated: Jul 19, 2026

Preparation of Large-area Vertical 2D Crystal Hetero-structures Through the Sulfurization of Transition Metal Films for Device Fabrication
08:50

Preparation of Large-area Vertical 2D Crystal Hetero-structures Through the Sulfurization of Transition Metal Films for Device Fabrication

Published on: November 28, 2017

A Standard and Reliable Method to Fabricate Two-Dimensional Nanoelectronics
07:12

A Standard and Reliable Method to Fabricate Two-Dimensional Nanoelectronics

Published on: August 28, 2018

Theoretical Calculation and Experimental Verification for Dislocation Reduction in Germanium Epitaxial Layers with Semicylindrical Voids on Silicon
06:57

Theoretical Calculation and Experimental Verification for Dislocation Reduction in Germanium Epitaxial Layers with Semicylindrical Voids on Silicon

Published on: July 17, 2020

結論:

  • 層ごとに層を重ねるプロセスは,制御された方向性を有する二次コロイド結晶を製造するためのシンプルで効果的な方法を提供します.
  • テンプレート効果と表面張りは,構造形成において重要な役割を果たします.
  • このアプローチは,複雑なコロイド構造の作成を可能にし,調節可能な材料特性の可能性を開きます.