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Ferromagnetism01:31

Ferromagnetism

3.4K
Materials like iron, nickel, and cobalt consist of magnetic domains, within which the magnetic dipoles are arranged parallel to each other. The magnetic dipoles are rigidly aligned in the same direction within a domain by quantum mechanical coupling among the atoms. This coupling is so strong that even thermal agitation at room temperature cannot break it. The result is that each domain has a net dipole moment. However, some materials have weaker coupling, and are ferromagnetic at lower...
3.4K
Magnetic Susceptibility and Permeability01:31

Magnetic Susceptibility and Permeability

2.6K
In linear magnetic materials, like paramagnets and diamagnets, magnetization is proportional to the magnetic field intensity. The constant of proportionality, a dimensionless number, is called magnetic susceptibility. The value of the susceptibility depends on the type of material.
When diamagnetic materials are placed under an external magnetic field, the moments opposite to the field are induced. Hence, the susceptibility for diamagnets has a minimal negative value of 10-5–10-6. Since...
2.6K
Paramagnetism01:30

Paramagnetism

3.1K
Paramagnets are materials with unpaired electrons that possess a finite magnetic moment. In the absence of a magnetic field, these moments are randomly oriented, and thus the net moment is zero. Under an external field, a torque acting on the moments tends to align them along the field's direction. However, the random thermal motion of electrons produces a torque opposite to the external field and tries to disorient the moments. These two competing effects align only a few moments along the...
3.1K
Diamagnetism01:26

Diamagnetism

3.2K
Materials consisting of paired electrons have zero net magnetic moments. However, when these materials are placed under an external magnetic field, the moments opposite to the field are induced. Such materials are called diamagnets. Diamagnetism is the response of the diamagnets when placed in an external magnetic field.
Diamagnetism was discovered by Anton Brugmans in 1778 when he observed that bismuth gets repelled by magnetic fields, thus theorizing that diamagnets get repelled by magnets....
3.2K
Colors and Magnetism03:02

Colors and Magnetism

14.4K
Color in Coordination Complexes
When atoms or molecules absorb light at the proper frequency, their electrons are excited to higher-energy orbitals. For many main group atoms and molecules, the absorbed photons are in the ultraviolet range of the electromagnetic spectrum, which cannot be detected by the human eye. For coordination compounds, the energy difference between the d orbitals often allows photons in the visible range to be absorbed and emitted, which is seen as colors by the human...
14.4K
Potential Due to a Magnetized Object01:24

Potential Due to a Magnetized Object

850
Magnetic dipoles in magnetic materials are aligned when placed under an external magnetic field. For paramagnets and ferromagnets, dipole alignment occurs in the direction of the magnetic field. However, the dipoles align opposite to the field in the case of diamagnets. This state of magnetic polarization due to the external field is called magnetization. Magnetization is defined as the dipole moment per unit volume. It plays a similar role to polarization in electrostatics.
The vector...
850

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Related Experiment Video

Updated: Mar 16, 2026

Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
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Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains

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Hard magnetism in structurally engineered silica nanocomposite.

Hyon-Min Song1, Jeffrey I Zink

  • 1Department of Chemistry, Dong-A University, Busan 604-714, South Korea. hyonmin1@dau.ac.kr.

Physical Chemistry Chemical Physics : PCCP
|August 19, 2016
PubMed
Summary

Researchers engineered complex nanomaterials by embedding magnetic cobalt ferrite nanoparticles into mesoporous silica. Experimental control over heating created diverse silica structures, offering new avenues for advanced material design.

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Area of Science:

  • Materials Science
  • Nanotechnology
  • Solid State Chemistry

Background:

  • Bottom-up synthesis of nanomaterials can be enhanced by artificial engineering.
  • MCM-41 type mesoporous silica offers a versatile platform for incorporating nanoparticles.

Purpose of the Study:

  • To investigate the structural manipulation of MCM-41 silica by embedding cobalt ferrite nanoparticles.
  • To explore the influence of heating rates and temperatures on silica structure and magnetic phase formation.

Main Methods:

  • Embedding cobalt ferrite (CoFe2O4) nanoparticles into MCM-41 silica.
  • Controlled heating experiments at varying rates and temperatures.
  • Characterization of resulting silica structures and magnetic phases.

Main Results:

  • Diverse silica morphologies (hollow, framed, melted) were formed based on heating conditions.
  • Magnetic properties were dominated by CoFe2O4, influenced by hematite and cobalt silicate phases.
  • Slow heating preserved mesostructures but reduced mesopore size; higher temperatures yielded additional cobalt oxide phases.

Conclusions:

  • Experimental control over heating enables the creation of structurally complex nanomaterials.
  • The amorphous silica matrix facilitates diverse phase formation and cation diffusion.
  • This approach offers efficient and direct artificial engineering for nanomaterial preparation.