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Arrested relaxation in an isolated molecular ultracold plasma

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arxiv 1703.01188 v3 pith:PNH2NF3C submitted 2017-03-01 physics.plasm-ph cond-mat.dis-nncond-mat.mes-hallphysics.atom-ph

classification physics.plasm-phcond-mat.dis-nncond-mat.mes-hallphysics.atom-ph
keywords plasmaionsrydbergarrestedcoreelectronelectronsenergy
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Spontaneous avalanche to plasma splits the core of an ellipsoidal Rydberg gas of nitric oxide. Ambipolar expansion first quenches the electron temperature of this core plasma. Then, long-range, resonant charge transfer from ballistic ions to frozen Rydberg molecules in the wings of the ellipsoid quenches the centre-of-mass ion/Rydberg molecule velocity distribution. This sequence of steps gives rise to a remarkable mechanics of self-assembly, in which the kinetic energy of initially formed hot electrons and ions drives an observed separation of plasma volumes. These dynamics adiabatically sequester energy in a reservoir of mass transport, starting a process that anneals separating volumes to form an apparent glass of strongly coupled ions and electrons. Short-time electron spectroscopy provides experimental evidence for complete ionization. The long lifetime of this system, particularly its stability with respect to recombination and neutral dissociation, suggests that this transformation affords a robust state of arrested relaxation, far from thermal equilibrium.

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