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Conductors and Insulators01:19

Conductors and Insulators

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Some materials may easily let electrical charges pass through them, while others obstruct their flow. The former are called conductors and the latter insulators. The atomic structures of materials determine whether they are conductors or insulators of electricity.
Most metals are conductors. Their atomic configuration is such that one or more electron(s) are loosely bound to the nucleus in each atom. Thus, a sea of mobile electrons are available in them, known as free electrons. Their easy...
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Charge on a Conductor01:26

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An interesting property of a conductor in static equilibrium is that extra charges on the conductor end up on its outer surface, regardless of where they originate. Consider a hollow metallic conductor with a uniform surface charge density. Since the conductor itself is in electrostatic equilibrium, there should not be any electric field inside the conductor. Now, assume a Gaussian surface enclosing the hollow portion. Applying Gauss's law, the inner surface of the hollow conductor will not...
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Mechanistic Models: Compartment Models in Algorithms for Numerical Problem Solving01:29

Mechanistic Models: Compartment Models in Algorithms for Numerical Problem Solving

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Mechanistic models play a crucial role in algorithms for numerical problem-solving, particularly in nonlinear mixed effects modeling (NMEM). These models aim to minimize specific objective functions by evaluating various parameter estimates, leading to the development of systematic algorithms. In some cases, linearization techniques approximate the model using linear equations.
In individual population analyses, different algorithms are employed, such as Cauchy's method, which uses a...
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Oral Cavity01:11

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The oral cavity, or the mouth, is a complex structure in humans that plays a vital role in our day-to-day lives. Its role is not only in chewing and swallowing food; it also plays a role in speech and facial expressions.
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Electric Field Inside a Conductor01:20

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When a conductor is placed in an external electric field, the free charges in the conductor redistribute and very quickly reach electrostatic equilibrium. The resulting charge distribution and its electric field have many interesting properties, which can be investigated with the help of Gauss's law.
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Charging Conductors By Induction01:15

Charging Conductors By Induction

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The Earth is a good conductor of electricity, and it is so big that it can be considered an infinite source or sink of charges. It can easily exchange charges with any matter.
Generally, conductors like metals do not allow any excess charge to be present on them. Any excess charge added to metals easily flows away, for example, when a metal is placed on the Earth. This process is called earthing.
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Related Experiment Video

Updated: Feb 10, 2026

Construction and Characterization of External Cavity Diode Lasers for Atomic Physics
09:10

Construction and Characterization of External Cavity Diode Lasers for Atomic Physics

Published on: April 24, 2014

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A refined cavity construction algorithm for the conductor-like screening model.

Andreas Klamt1,2, Michael Diedenhofen1

  • 1COSMOlogic GmbH & Co. KG, Imbacher Weg 46, Leverkusen, 51379, Germany.

Journal of Computational Chemistry
|May 15, 2018
PubMed
Summary

A new FINE Cavity algorithm improves dielectric continuum solvation calculations using the Conductor-like Screening Model (COSMO). This method enhances molecular cavity construction, particularly in challenging concave regions.

Keywords:
COSMOCOSMO-RScavity constructioncontinuum solvation modeliso-density cavity

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Area of Science:

  • Computational chemistry
  • Theoretical chemistry
  • Molecular modeling

Background:

  • The Conductor-like Screening Model (COSMO) is widely used for dielectric continuum solvation calculations.
  • Existing COSMO cavity construction methods exhibit deficiencies, especially in concave molecular regions.

Purpose of the Study:

  • Introduce a novel cavity construction algorithm for COSMO calculations.
  • Address limitations of previous COSMO standard cavity definitions.
  • Present the FINE Cavity algorithm and its applications.

Main Methods:

  • Cavity construction based on iso-surface triangulation.
  • Development and implementation of the FINE Cavity algorithm.
  • Comparison with earlier COSMO cavity construction methods.

Main Results:

  • The FINE Cavity algorithm provides an improved standard for COSMO solvation calculations.
  • Demonstrated effectiveness in handling concave regions of molecular cavities.
  • Successful application examples showcasing the algorithm's utility.

Conclusions:

  • The FINE Cavity algorithm represents a significant advancement in computational solvation modeling.
  • Offers a more accurate and robust approach for dielectric continuum calculations.
  • Provides a new standard for molecular cavity construction in computational chemistry.