Jove
Visualize
お問い合わせ
JoVE
x logofacebook logolinkedin logoyoutube logo
JoVEについて
概要リーダーシップブログJoVEヘルプセンター
著者向け
出版プロセス編集委員会範囲と方針査読よくある質問投稿
図書館員向け
推薦の声購読アクセスリソース図書館諮問委員会よくある質問
研究
JoVE JournalMethods CollectionsJoVE Encyclopedia of Experimentsアーカイブ
教育
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab Manual教員リソースセンター教員サイト
利用規約
プライバシーポリシー
ポリシー

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...
Network Covalent Solids02:18

Network Covalent Solids

Network covalent solids contain a three-dimensional network of covalently bonded atoms as found in the crystal structures of nonmetals like diamond, graphite, silicon, and some covalent compounds, such as silicon dioxide (sand) and silicon carbide (carborundum, the abrasive on sandpaper). Many minerals have networks of covalent bonds.
To break or to melt a covalent network solid, covalent bonds must be broken. Because covalent bonds are relatively strong, covalent network solids are typically...
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...
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...
Crystal Density01:19

Crystal Density

The crystal lattice structure of a material allows us to determine how many molecules exist in its unit cell. With this information, alongside the unit-cell parameters - three distance parameters (a, b, c) and three angular parameters (α, β, γ).Density (ρ) = (Z × M) / (a × b × c × NA)where:Z is the number of formula units per unit cellM is the molar mass of the substancea, b, and c are the edge lengths of the unit cellNA is Avogadro’s numberFor a simple cubic lattice, atoms are located only at...
Imperfections in Crystal Structure: Point, Line and Plane Defects01:25

Imperfections in Crystal Structure: Point, Line and Plane Defects

A perfect crystal, in theory, has a uniform structure with the same unit cell and lattice points throughout. However, any deviation from this periodic arrangement is known as an imperfection or defect. These defects can be categorized into three types: point, line, and plane defects.Point defects occur when there is a deviation from the ideal due to missing atoms, displaced atoms, or additional atoms. These imperfections might occur due to imperfect packing during crystallization or because of...

こちらも読む

関連記事

共著者、ジャーナル、引用グラフによってこの研究に関連する記事。

並び替え
Same author

Compositional Tunability and Framework-Charge Modulation in Pore-Space-Partitioned Metal-Organic Frameworks.

Inorganic chemistry·2026
Same author

Evolution Pathway from Iron Precursors to Fe-N<sub>4</sub> Single-Atom Catalysts via High-Temperature Cyanide Coordination Chemistry.

Journal of the American Chemical Society·2026
Same author

Quantifying Deep-Level Defects-Dominated Degradation for Commercially Viable Perovskite Solar Cells.

Advanced materials (Deerfield Beach, Fla.)·2026
Same author

Frustrated Lewis Pair and Photocatalysis Synergistically Promote Copper Nanocluster Catalysis.

ACS nano·2026
Same author

Expanding the Ligand Scope of Pore-Space-Partitioned MOFs with a Chiral Camphorate Linker.

Inorganic chemistry·2026
Same author

Controlled Synthesis of Thiol-Protected Pd Nanoclusters via an Organophosphine Pre-Protection Strategy.

Inorganic chemistry·2026

関連する実験動画

Updated: Jul 8, 2026

Compact Quantum Dots for Single-molecule Imaging
17:14

Compact Quantum Dots for Single-molecule Imaging

Published on: October 9, 2012

単一サイズの量子ドットから結晶のスーパーラットが作られる.

Nanfeng Zheng1, Xianhui Bu, Haiwei Lu

  • 1Department of Chemistry, University of California, Riverside 92521, USA.

Journal of the American Chemical Society
|August 25, 2005
PubMed
まとめ

研究者らは硫化カドミウム (CdS) 量子ドットを合成し,138の金属カルコゲンサイトで,これまでに最大の単一サイズのII-VI量子ドットを達成しました. さらにさらなる研究により,さらに大きなCdS量子ドットが可能であると示唆されています.

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
  • 固体物理 固体物理学

背景:

  • 半導体ナノ結晶合成における精密な原子制御は難しい.
  • モノディスパース半導体ナノ結晶は,高度なアプリケーションに不可欠です.

研究 の 目的:

  • カドミウム硫化物 (CdS) の量子ドットスーパーラットスの合成と特徴を報告する.
  • これらの新しいナノクリスタルクラスターの結晶構造と光学特性を調査する.
  • 単一サイズのII-VI量子ドットの大きさの新しい基準を確立する.

主な方法:

  • 単一サイズの半導体クラスターの合成.
  • 集束の大きさと構造を決定する単結晶X線 difraktion分析.
  • 大きいクラスターの識別のためのX線粉末 difraktion (XRD).
  • 量子ドット特性を研究するための光学吸収スペクトロスコーピー.

主要な成果:

  • 単一サイズのクラスターからCdSナノクリスタルスーパーラットスを成功して合成しました.
  • 単結晶分析により,138個の金属カルコゲン部位を持つ最大のクラスタを決定しました.

さらに関連する動画

Fabrication of Uniform Nanoscale Cavities via Silicon Direct Wafer Bonding
10:32

Fabrication of Uniform Nanoscale Cavities via Silicon Direct Wafer Bonding

Published on: January 9, 2014

Atomically Traceable Nanostructure Fabrication
12:35

Atomically Traceable Nanostructure Fabrication

Published on: July 17, 2015

関連する実験動画

Last Updated: Jul 8, 2026

Compact Quantum Dots for Single-molecule Imaging
17:14

Compact Quantum Dots for Single-molecule Imaging

Published on: October 9, 2012

Fabrication of Uniform Nanoscale Cavities via Silicon Direct Wafer Bonding
10:32

Fabrication of Uniform Nanoscale Cavities via Silicon Direct Wafer Bonding

Published on: January 9, 2014

Atomically Traceable Nanostructure Fabrication
12:35

Atomically Traceable Nanostructure Fabrication

Published on: July 17, 2015

  • 既知の最大単一のサイズのII-VI量子ドット (>100の金属カルコゲンサイト) を特定しました.
  • XRDと光学研究の証拠は,より大きな単一サイズのCdS量子ドット (>200の金属カルコゲンサイト) の存在を示唆しています.
  • クラスターは立方体亜鉛ブレンドコアと六角形のワルツチート角を呈しています.
  • 六角形-立方形のインターフェースの変数に基づいた最大5つの異体形が観察されました.
  • 結論:

    • 制御された原子組成で大きな単一サイズのII-VI量子ドットを作成する方法を実証した.
    • 合成されたCdS量子ドットは,ナノ結晶のサイズ制御における重要な進歩を表しています.
    • この発見は,精密に設計された原子構造と特性を備えた量子ドットを探求するための道を開く.