Jove
Visualize
Contact Us

Related Concept Videos

Carrier Transport01:21

Carrier Transport

489
The generation of electrical current in semiconductors is fundamentally driven by two mechanisms: drift and diffusion. These processes are essential for the functionality and performance of semiconductor-based devices.
Drift Current:
The drift of charge carriers is started by an external electric field (E). Charged particles, such as electrons and holes, experience an acceleration between collisions with lattice atoms. For electrons, this results in a drift velocity (vd) given by:
489
Forced Oscillations01:06

Forced Oscillations

6.6K
When an oscillator is forced with a periodic driving force, the motion may seem chaotic. The motions of such oscillators are known as transients. After the transients die out, the oscillator reaches a steady state, where the motion is periodic, and the displacement is determined.
6.6K
Drift Velocity01:19

Drift Velocity

4.3K
The high speed of electrical signals results from the fact that the force between charges acts rapidly at a distance. Thus, when a free charge is forced into a wire, the incoming charge pushes other charges ahead due to the repulsive force between like charges. These moving charges move the charges farther down the line. The density of charge in a system cannot easily be increased, so the signal is passed on rapidly. The resulting electrical shock wave moves through the system at nearly the...
4.3K
Motion Of A Charged Particle In A Magnetic Field01:22

Motion Of A Charged Particle In A Magnetic Field

5.0K
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...
5.0K
Theory of Metallic Conduction01:17

Theory of Metallic Conduction

1.4K
The conduction of free electrons inside a conductor is best described by quantum mechanics. However, a classical model makes predictions close to the results of quantum mechanics. It is called the theory of metallic conduction.
In this theory, Newton's second law of motion is used to determine the acceleration of an electron in the presence of an applied electric field. Then, its velocity is expressed via this acceleration.
An electron moves through the crystal, containing positive ions,...
1.4K
Potential Due to a Polarized Object01:29

Potential Due to a Polarized Object

445
A neutral atom consists of a positively charged nucleus surrounded by a negatively charged electron cloud. When placed in an external electric field, the external electric force pulls the electrons and nucleus apart, opposite to the intrinsic attraction between the nucleus and the electrons. The opposing forces balance each other with a slight shift between the center of masses of the nucleus and the electron cloud, resulting in a polarized atom. On the other hand, a few molecules, like water,...
445

You might also read

Related Articles

Articles linked to this work by shared authors, journal, and citation graph.

Sort by
Same author

Giant enhancement of transport driven by active fluctuations: Impact of inertia.

Physical review. E·2026
Same author

Inertia-induced mechanism for giant enhancement of transport generated by active fluctuations.

Chaos (Woodbury, N.Y.)·2025
Same author

Approach to nonequilibrium: From anomalous to Brownian diffusion via non-Gaussianity.

Chaos (Woodbury, N.Y.)·2025
Same author

Memory-induced absolute negative mobility.

Chaos (Woodbury, N.Y.)·2024
Same author

Effective mass approach to memory in non-Markovian systems.

Physical review. E·2024
Same author

Temperature anomalies of oscillating diffusion in ac-driven periodic systems.

Physical review. E·2023
JoVE
x logofacebook logolinkedin logoyoutube logo
ABOUT JoVE
OverviewLeadershipBlogJoVE Help Center
AUTHORS
Publishing ProcessEditorial BoardScope & PoliciesPeer ReviewFAQSubmit
LIBRARIANS
TestimonialsSubscriptionsAccessResourcesLibrary Advisory BoardFAQ
RESEARCH
JoVE JournalMethods CollectionsJoVE Encyclopedia of ExperimentsArchive
EDUCATION
JoVE CoreJoVE BusinessJoVE Science EducationJoVE Lab ManualFaculty Resource CenterFaculty Site
Terms & Conditions of Use
Privacy Policy
Policies

Related Experiment Video

Updated: Aug 6, 2025

AC Electrokinetic Phenomena Generated by Microelectrode Structures
20:38

AC Electrokinetic Phenomena Generated by Microelectrode Structures

Published on: July 28, 2008

11.6K

Periodic potential can enormously boost free-particle transport induced by active fluctuations.

K Białas1, J Łuczka1, J Spiechowicz1

  • 1Institute of Physics, University of Silesia, 41-500 Chorzów, Poland.

Physical Review. E
|March 18, 2023
PubMed
Summary

Active fluctuations boost particle transport in biological systems. Adding a periodic potential paradoxically enhances this transport, unlike passive systems where it

More Related Videos

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017

7.5K
Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions
08:41

Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions

Published on: September 7, 2018

9.0K

Related Experiment Videos

Last Updated: Aug 6, 2025

AC Electrokinetic Phenomena Generated by Microelectrode Structures
20:38

AC Electrokinetic Phenomena Generated by Microelectrode Structures

Published on: July 28, 2008

11.6K
Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving
11:21

Cooling an Optically Trapped Ultracold Fermi Gas by Periodical Driving

Published on: March 30, 2017

7.5K
Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions
08:41

Generation and Control of Electrohydrodynamic Flows in Aqueous Electrolyte Solutions

Published on: September 7, 2018

9.0K

Area of Science:

  • Physics of active matter
  • Nonequilibrium statistical mechanics
  • Biophysics

Background:

  • Active fluctuations are increasingly observed in systems driven by self-propulsion or environmental interactions.
  • These fluctuations drive systems far from equilibrium, enabling phenomena forbidden under equilibrium conditions.
  • Understanding active fluctuations is crucial for comprehending living matter dynamics.

Purpose of the Study:

  • To investigate the effect of periodic potentials on particle transport driven by active fluctuations.
  • To contrast this effect with that observed under thermal fluctuations.
  • To provide a fundamental explanation for the role of periodic structures in intracellular transport.

Main Methods:

  • Theoretical analysis of particle dynamics under active fluctuations and periodic potentials.
  • Comparison with scenarios involving only thermal fluctuations.
  • Conceptual framework for understanding nonequilibrium transport phenomena.

Main Results:

  • Active fluctuations paradoxically enhance free-particle transport by orders of magnitude when a periodic potential is applied.
  • In contrast, thermal fluctuations lead to reduced particle velocity in the presence of a periodic potential.
  • Demonstration of a mechanism explaining enhanced transport in active systems.

Conclusions:

  • Active fluctuations, combined with periodic potentials, can dramatically boost particle transport.
  • This finding offers a fundamental explanation for the necessity of structures like microtubules in cellular transport.
  • The results are experimentally verifiable using colloidal particles and optical potentials.