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Theories of Dissolution: Diffusion Layer Model01:15

Theories of Dissolution: Diffusion Layer Model

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Dissolution, the process by which drug particles dissolve in a solvent, is explained by the diffusion layer model, a theoretical framework that simulates the absorption of oral drugs and allows us to analyze experimental data.
This process starts with a thin layer, saturated with the drug, forming at the interface between the solid and liquid. The solute then diffuses from this layer into the main solution. The Noyes-Whitney equation suggests that the rate of dissolution relies on the diffusion...
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Diffusion01:12

Diffusion

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Diffusion is the passive movement of substances down their concentration gradients—requiring no expenditure of cellular energy. Substances, such as molecules or ions, diffuse from an area of high concentration to an area of low concentration in the cytosol or across membranes. Eventually, the concentration will even out, with the substance moving randomly but causing no net change in concentration. Such a state is called dynamic equilibrium, which is essential for maintaining overall...
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Diffusion01:21

Diffusion

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Diffusion is a type of passive transport. In passive transport, a substance tends to move from an area of high concentration to an area of low concentration until the concentration is equal across the space. For example, take the diffusion of substances through the air. When someone opens a perfume bottle in a room filled with people, the perfume is at its highest concentration in the bottle and is at its lowest at the edges of the room. The perfume vapor will diffuse, or spread away, from the...
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Motion Of A Charged Particle In A Magnetic Field01:22

Motion Of A Charged Particle In A Magnetic Field

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A charged particle experiences a force when moving through a magnetic field. Consider the field to be uniform and the charged particle to move perpendicular to it. If the field is in a vacuum, the magnetic field is the dominant factor determining the motion. Since the magnetic force is perpendicular to the direction of motion, a charged particle follows a curved path. The particle continues to follow this curved path until it forms a complete circle. Another way to look at this is that the...
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Spin–Spin Coupling Constant: Overview01:08

Spin–Spin Coupling Constant: Overview

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In bromoethane, the three methyl protons are coupled to the two methylene protons that are three bonds away. In accordance with the n+1 rule, the signal from the methyl protons is split into three peaks with 1:2:1 relative intensities. The methylene protons appear as a quartet, with the relative intensities of 1:3:3:1.
Qualitatively, any spin plus-half nucleus polarizes the spins of its electrons to the minus-half state. Consequently, the paired electron in the hydrogen–carbon bond must...
1.5K
NMR Spectroscopy: Spin–Spin Coupling01:08

NMR Spectroscopy: Spin–Spin Coupling

3.0K
The spin state of an NMR-active nucleus can have a slight effect on its immediate electronic environment. This effect propagates through the intervening bonds and affects the electronic environments of NMR-active nuclei up to three bonds away; occasionally, even farther. This phenomenon is called spin–spin coupling or J-coupling. Coupling interactions are mutual and result in small changes in the absorption frequencies of both nuclei involved. While nuclei of the same element are involved...
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Related Experiment Video

Updated: Jan 22, 2026

Synthesis of Cyclic Polymers and Characterization of Their Diffusive Motion in the Melt State at the Single Molecule Level
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Synthesis of Cyclic Polymers and Characterization of Their Diffusive Motion in the Melt State at the Single Molecule Level

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Effect of inter-layer spin diffusion on skyrmion motion in magnetic multilayers.

Serban Lepadatu1

  • 1Jeremiah Horrocks Institute for Mathematics, Physics and Astronomy, University of Central Lancashire, Preston, PR1 2HE, UK. SLepadatu@uclan.ac.uk.

Scientific Reports
|July 5, 2019
PubMed
Summary

This study reveals a new interfacial spin torque mechanism that drives skyrmion motion in multilayered films. This mechanism, enhanced in ultra-thin films, helps explain observed skyrmion Hall angles and the impact of material imperfections.

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Area of Science:

  • Condensed Matter Physics
  • Materials Science
  • Spintronics

Background:

  • Skyrmions are topologically protected spin textures with potential for data storage and processing.
  • Spin-orbit torques, particularly from the spin-Hall effect, are known methods for driving skyrmion motion.
  • Understanding additional torque mechanisms is crucial for efficient skyrmion manipulation.

Purpose of the Study:

  • To identify and characterize an additional interfacial spin torque contribution in multilayered magnetic stacks.
  • To investigate the role of vertical spin currents and inter-layer diffusion in skyrmion dynamics.
  • To explain the observed small skyrmion Hall angles and the influence of material imperfections.

Main Methods:

  • Theoretical analysis of spin currents and spin accumulation in multilayered systems.
  • Modeling of interfacial spin torque arising from inter-layer diffusion.
  • Simulation of skyrmion motion incorporating both spin-orbit torque and the novel diffusive spin torque.
  • Investigation of the impact of topographical surface roughness on skyrmion dynamics.

Main Results:

  • An additional interfacial spin torque mechanism, driven by vertical spin currents, is identified.
  • This diffusive spin torque is significantly enhanced in ultra-thin films and opposes electron flow.
  • The combined effect of spin-orbit torque and diffusive spin torque explains small skyrmion Hall angles.
  • Material imperfections, such as monolayer-level surface roughness, critically influence threshold currents and skyrmion Hall angles.

Conclusions:

  • A novel diffusive spin torque mechanism contributes significantly to skyrmion motion in multilayered films.
  • This finding provides a comprehensive explanation for experimental observations of skyrmion Hall angles.
  • Material imperfections play a crucial role in the dynamics of ultra-thin film skyrmions, necessitating careful control in device fabrication.