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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...
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...
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...
Imperfections in Crystal Structure: Stoichiometric Point Defects01:26

Imperfections in Crystal Structure: Stoichiometric Point Defects

Schottky defects arise when some lattice points in a crystal, such as those in NaCl, remain unoccupied, creating lattice vacancies without disturbing the overall electrical neutrality of the crystal. This defect is common in ionic crystals where the positive and negative ions are similar in size, as seen in sodium chloride and cesium chloride. The presence of Schottky defects enables the crystal to conduct electricity to a small extent through an ionic mechanism. Electric fields cause nearby...
Imperfections in Crystal Structure: Non-Stoichiometric Defects01:29

Imperfections in Crystal Structure: Non-Stoichiometric Defects

Non-stoichiometric defects refer to a type of defect in the crystal structure of a compound where the ratio of its constituent elements deviates from the ideal stoichiometric ratio. There are two main types of non-stoichiometric defects: metal excess defects and metal deficiency defects.Metal excess defects occur when there is a slight surplus of metal ions than what is required by the stoichiometric ratio of the compound. For example, heating a sodium chloride crystal in sodium vapor results...

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Video Experimental Relacionado

Updated: Jul 24, 2026

Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals
10:35

Novel Techniques for Observing Structural Dynamics of Photoresponsive Liquid Crystals

Published on: May 29, 2018

Ingeniería de cristales: de la estructura a la función.

Mark D Hollingsworth1

  • 1Department of Chemistry, Kansas State University, Manhattan, KS 66506, USA. mdholl@ksu.edu

Science (New York, N.Y.)
|March 30, 2002
PubMed
Resumen

La ingeniería de cristales utiliza la síntesis iterativa, la cristalografía y la computación para controlar la estructura cristalina. Este enfoque se centra en el reconocimiento molecular durante la formación de cristales, lo que lleva a nuevos materiales con propiedades a medida.

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Área de la Ciencia:

  • Ingeniería de Cristal Ingeniería de Cristal.
  • Ciencia de los materiales ciencia de los materiales.
  • Química del estado sólido.

Sus antecedentes:

  • La ingeniería de cristales es un campo multidisciplinario.
  • El éxito depende de la integración de la síntesis, la cristalografía y el análisis computacional.
  • Comprender el reconocimiento molecular es clave para controlar la formación de cristales.

Objetivo del estudio:

  • Explorar cómo los eventos de reconocimiento molecular influyen en la nucleación y el crecimiento del cristal.
  • Demostrar nuevos métodos para el control de la estructura cristalina interna y la simetría.
  • Producir nuevos materiales con propiedades químicas y físicas deseables.

Principales métodos:

  • Síntesis iterativa de los materiales cristalinos.
  • Cristalografía de rayos X para la determinación de la estructura.
  • Modelado computacional de los procesos de crecimiento de cristales.
  • Análisis de eventos de reconocimiento molecular durante la nucleación.

Principales resultados:

  • Control demostrado sobre la estructura cristalina interna y la simetría.
  • Produjo con éxito materiales con propiedades químicas y físicas mejoradas.
  • Identificó las principales vías de reconocimiento molecular que rigen la formación de cristales.

Conclusiones:

  • La ingeniería de cristal ofrece poderosas estrategias para el diseño racional de materiales.
  • Centrarse en el reconocimiento molecular proporciona un control preciso sobre las propiedades del cristal.
  • Este enfoque iterativo avanza en el desarrollo de materiales cristalinos funcionales.