Ambipolar diffusion is diffusion of positive and negative particles with opposite electrical charge (such as electrons and positive ions) due to their interaction via an electric field.[1]

In plasma physics

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In plasma physics, ambipolar diffusion is related to the concept of quasineutrality. In most plasmas, the forces acting on the ions are different from those acting on the electrons, so naively one would expect one species to be transported faster than the other, whether by diffusion or convection or some other process. If such differential transport has a divergence, then it results in a change of the charge density. The latter will create an electric field that can alter the transport of one or both species in such a way that they become equal.

The simplest example is a plasma localized in an unmagnetized vacuum. (See Inertial confinement fusion.) Both electrons and ions will stream outward with their respective thermal velocity. If the ions are relatively cold, their thermal velocity will be small. The thermal velocity of the electrons will be fast due to their high temperature and low mass: . As the electrons leave the initial volume, they will leave behind a positive charge density of ions, resulting in an outwardly directed electric field. This field will act on the electrons to slow them down and on the ions to speed them up. The net result is that both ions and electrons stream outward at the speed of sound, , which is much smaller than the electron thermal velocity, but usually much larger than the ion thermal velocity.

In astrophysics

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In astrophysics, "ambipolar diffusion" refers specifically to the decoupling of neutral particles from plasma, for example in the initial stage of star formation. The neutral particles in this case are mostly hydrogen molecules in a cloud that would undergo gravitational collapse if they were not collisionally coupled to the plasma. The plasma is composed of ions (mostly protons) and electrons, which are tied to the interstellar magnetic field and therefore resist collapse. In a molecular cloud where the fractional ionization is very low (one part per million or less), neutral particles only rarely encounter charged particles, and so are not entirely hindered in their collapse (note that now is dynamical collapse, not free fall) into a star.[2]: 285 

In solid state physics

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In the case of ionic crystals, the fluxes of the diffusing species are also coupled due to the electroneutrality.[3]

See also

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References

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  1. ^ "Definition of AMBIPOLAR".
  2. ^ Zweibel, Ellen G. (2015). "Chapter 11 Ambipolar Diffusion". In Lazarian, Alexander; de Gouveia Dal Pino, Elisabete M.; Melioli, Claudio (eds.). Magnetic Fields in Diffuse Media. Astrophysics and Space Science Library. Vol. 407. Berlin, Heidelberg: Springer Berlin Heidelberg. doi:10.1007/978-3-662-44625-6. ISBN 978-3-662-44624-9.
  3. ^ Kizilyalli, M.; Corish, J.; Metselaar, R. (1999). "Definitions of terms for diffusion in the solid state (IUPAC Recommendations 1999)" (PDF). Pure Appl. Chem. 71 (7): 1307–1325. doi:10.1351/pac199971071307. S2CID 98142954.

Further reading

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📚 Artikel Terkait di Wikipedia

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gave a difference of +0.55 volt with an uncertainty of 0.09 volt. Ambipolar diffusion Plasma fountain Source, press release: Carlowicz, Mike; "Solar Wind

Semiconductor

electrons and holes to the system, which interact via a process called ambipolar diffusion. Whenever thermal equilibrium is disturbed in a semiconducting material

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such high magnetic fields—indeed, so much so that the theory of ambipolar diffusion has to be invoked to reduce the field in normal stars. This theory

Debye sheath

Child-Langmuir (CL) law have been revised as reported in two review papers. Ambipolar diffusion Double layer (plasma), especially the section Current-carrying double

Plasma diffusion

collective transport process often described in terms of ambipolar diffusion. Plasma diffusion across a magnetic field is an important topic in magnetic

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