4.6 Article

Radio frequency field-induced electron mobility in an ultracold plasma state of arrested relaxation

期刊

PHYSICAL REVIEW A
卷 102, 期 6, 页码 -

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AMER PHYSICAL SOC
DOI: 10.1103/PhysRevA.102.063122

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资金

  1. U.S. Air Force Office of Scientific Research [FA9550-17-1-0343]
  2. Natural Sciences and Engineering research Council of Canada (NSERC)
  3. Canada Foundation for Innovation (CFI)
  4. British Columbia Knowledge Development Fund (BCKDF)
  5. National Science Foundation (NSF) Materials Research Science and Engineering Centers (MRSEC) program through Columbia University in the Center for Precision Assembly of Superstratic and Superatomic Solids [DMR-1420634]

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Penning ionization releases electrons in a state-selected Rydberg gas of nitric oxide entrained in a supersonic molecular beam. Subsequent processes of electron impact avalanche, bifurcation, and quench form a strongly coupled, spatially correlated, ultracold plasma of NO+ ions and electrons that exhibits characteristics of self-organized criticality. This plasma contains a residue of nitric oxide Rydberg molecules. A conventional fluid dynamics of ion-electron-Rydberg quasi-equilibrium predicts rapid decay to neutral atoms. Instead, the NO plasma endures for a millisecond or more, suggesting that quenched disorder creates a state of suppressed electron mobility. Supporting this proposition, a 60-MHz radio frequency field with a peak-to-peak amplitude less than 1 V cm(-1) acts dramatically to mobilize electrons, causing the plasma to dissipate by dissociative recombination and Rydberg predissociation. An evident density dependence shows that this effect relies on collisions, giving weight to the idea of arrested relaxation as a cooperative property of the ensemble.

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