Jove
Visualize
Contáctanos

Videos de Conceptos Relacionados

Magnetic Field due to Moving Charges01:23

Magnetic Field due to Moving Charges

11.3K
A stationary charge creates and interacts with the electric field, while a moving charge creates a magnetic field.
Consider a point charge moving with a constant velocity. Like the electric field, the magnetic field at any point is directly proportional to the magnitude of the charge and inversely proportional to the square of the distance between the source point and the field point. However, unlike the electric field, the magnetic field is always perpendicular to the plane containing the line...
11.3K
Magnetic Field Due to Two Straight Wires01:18

Magnetic Field Due to Two Straight Wires

5.2K
Consider two parallel straight wires carrying a current of 10 A and 20 A in the same direction and separated by a distance of 20 cm. Calculate the magnetic field at a point "P2", midway between the wires. Also, evaluate the magnetic field when the direction of the current is reversed in the second wire.
5.2K
Magnetostatic Boundary Conditions01:28

Magnetostatic Boundary Conditions

1.9K
An electric field suffers a discontinuity at a surface charge. Similarly, a magnetic field is discontinuous at a surface current. The perpendicular component of a magnetic field is continuous across the interface of two magnetic mediums. In contrast, its parallel component, perpendicular to the current, is discontinuous by the amount equal to the product of the vacuum permeability and the surface current. Like the scalar potential in electrostatics, the vector potential is also continuous...
1.9K
Magnetic Damping01:17

Magnetic Damping

1.3K
Eddy currents can produce significant drag on motion, called magnetic damping. For instance, when a metallic pendulum bob swings between the poles of a strong magnet, significant drag acts on the bob as it enters and leaves the field, quickly damping the motion.
If, however, the bob is a slotted metal plate, the magnet produces a much smaller effect. When a slotted metal plate enters the field, an emf is induced by the change in flux; however, it is less effective because the slots limit the...
1.3K
Mass Analyzers: Overview01:13

Mass Analyzers: Overview

2.0K
The mass analyzer is a crucial component of the mass spectrometer. In the ionization chamber, the vaporized sample is bombarded with a high-energy electron beam to generate a radical cation and further fragment into neutral molecules, radicals, and cations. A series of negatively charged accelerator plates accelerate the cations into the mass analyzer. The mass analyzer separates ions according to their mass-to-charge (m/z) ratios and then directs them to the detector. The common types of mass...
2.0K
Double Resonance Techniques: Overview01:12

Double Resonance Techniques: Overview

870
Double resonance techniques in Nuclear Magnetic Resonance (NMR) spectroscopy involve the simultaneous application of two different frequencies or radiofrequency pulses to manipulate and observe two distinct nuclear spins. One important application of double resonance is spin decoupling, which selectively suppresses coupling with one type of nucleus while observing the NMR signal from another nucleus, simplifying the spectrum and enhancing resolution.
Spin decoupling is usually achieved by...
870

También podría leer

Artículos Relacionados

Artículos vinculados a este trabajo por autores compartidos, revista y gráfico de citas.

Ordenar por
Same author

Charge-Transfer-Mediated Boron Magneto-Ionics: Towards Voltage-Driven Multi-Ion Transport.

Advanced science (Weinheim, Baden-Wurttemberg, Germany)·2026
Same author

<i>Sambucus ebulus</i> L. Fruits: Phytochemistry, Molecular Mechanisms, and Biological Activities in Inflammation, Infection, and Cancer.

Foods (Basel, Switzerland)·2026
Same author

Comparative Profiling and In Silico Multitarget Analysis of Volatile Constituents from <i>Sambucus ebulus</i> L. Dried Fruits.

Plants (Basel, Switzerland)·2026
Same author

Optimizing the Energy Product in Core-Shell Nanoparticle Magnets: General Guidelines and the FePt/CoFe System.

Materials (Basel, Switzerland)·2026
Same author

Highly Flexible and Conformable ZnO/FeGa Magnetoelectric Heterostructures for Skin wound Healing.

Advanced science (Weinheim, Baden-Wurttemberg, Germany)·2026
Same author

Qualitative Evaluation of the Magnetocrystalline Anisotropy in Spinel Ferrite Nanoparticles Using Polarized Neutron Powder Diffraction.

Small (Weinheim an der Bergstrasse, Germany)·2026
JoVE
x logofacebook logolinkedin logoyoutube logo
ACERCA DE JoVE
Visión GeneralLiderazgoBlogCentro de Ayuda JoVE
AUTORES
Proceso de PublicaciónConsejo EditorialAlcance y PolíticasRevisión por ParesPreguntas FrecuentesEnviar
BIBLIOTECARIOS
TestimoniosSuscripcionesAccesoRecursosConsejo Asesor de BibliotecasPreguntas Frecuentes
INVESTIGACIÓN
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchivo
EDUCACIÓN
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualCentro de Recursos para ProfesoresSitio de Profesores
Términos y Condiciones de Uso
Política de Privacidad
Políticas

Video Experimental Relacionado

Updated: May 4, 2026

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples
07:01

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples

Published on: June 9, 2016

9.2K

Superar el límite superparamagnético con sesgo de intercambio.

Vassil Skumryev1, Stoyan Stoyanov, Yong Zhang

  • 1Department of Physics and Astronomy, University of Delaware, Newark, Delaware 19716, USA. vassil@udel.edu

Nature
|June 20, 2003
PubMed
Resumen

Los investigadores desarrollaron un método para superar el límite superparamagnético en las nanopartículas magnéticas. Al acoplar nanopartículas de cobalto ferromagnético con una matriz antiferromagnética, se logró un orden magnético estable a temperaturas más altas, lo que permite aplicaciones potenciales en el almacenamiento de datos y la medicina.

Más Videos Relacionados

Merging Ion Concentration Polarization between Juxtaposed Ion Exchange Membranes to Block the Propagation of the Polarization Zone
08:06

Merging Ion Concentration Polarization between Juxtaposed Ion Exchange Membranes to Block the Propagation of the Polarization Zone

Published on: February 23, 2017

7.9K
Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
07:42

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

Published on: July 20, 2022

2.5K

Videos de Experimentos Relacionados

Last Updated: May 4, 2026

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples
07:01

Frequency Mixing Magnetic Detection Scanner for Imaging Magnetic Particles in Planar Samples

Published on: June 9, 2016

9.2K
Merging Ion Concentration Polarization between Juxtaposed Ion Exchange Membranes to Block the Propagation of the Polarization Zone
08:06

Merging Ion Concentration Polarization between Juxtaposed Ion Exchange Membranes to Block the Propagation of the Polarization Zone

Published on: February 23, 2017

7.9K
Optimizing Magnetic Force Microscopy Resolution and Sensitivity to Visualize Nanoscale Magnetic Domains
07:42

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

Published on: July 20, 2022

2.5K

Área de la Ciencia:

  • Ciencia de los materiales Ciencia de los materiales.
  • Nanotecnología La nanotecnología es la nanotecnología.
  • Física de la materia condensada Física de la materia condensada

Sus antecedentes:

  • Las nanopartículas magnéticas ofrecen potencial para el almacenamiento de datos y la medicina.
  • La miniaturización de las nanopartículas magnéticas está limitada por el efecto superparamagnético, donde la energía térmica causa inestabilidad del momento magnético.
  • Esta inestabilidad, conocida como el límite superparamagnético, dificulta las aplicaciones que requieren un orden magnético estable.

Objetivo del estudio:

  • Investigar un método para mejorar la anisotropía magnética y lograr la estabilidad de magnetización en nanopartículas ferromagnéticas.
  • Para superar el límite superparamagnético mediante el uso de acoplamiento de intercambio magnético interfacial.
  • Para demostrar el principio utilizando nanopartículas de cobalto en diferentes matrices.

Principales métodos:

  • Fabricación de nanopartículas de cobalto ferromagnético (aprox. 4 nm) incrustado en una matriz paramagnética o antiferromagnética.
  • Caracterización de las propiedades magnéticas y estabilidad de magnetización dependiente de la temperatura.
  • Análisis del acoplamiento de intercambio magnético en la interfaz ferromagnético-antiferromagnético.

Principales resultados:

  • Las nanopartículas de cobalto en una matriz paramagnética perdieron su momento magnético a 10 K.
  • Las nanopartículas de cobalto en una matriz antiferromagnética se mantuvieron ferromagnéticas hasta aproximadamente 290 K.
  • La estabilidad magnética mejorada se atribuyó al acoplamiento de intercambio magnético interfacial.

Conclusiones:

  • El acoplamiento de intercambio magnético interfacial entre materiales ferromagnéticos y antiferromagnéticos puede mejorar significativamente la anisotropía magnética.
  • Este enfoque supera efectivamente el límite superparamagnético, permitiendo un orden magnético estable en las nanopartículas a temperaturas más altas.
  • Los hallazgos allanan el camino para aplicaciones avanzadas de nanopartículas magnéticas en áreas como el registro de ultra-alta densidad y la biomedicina.