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1.
Sci Rep ; 12(1): 7327, 2022 May 05.
Artigo em Inglês | MEDLINE | ID: mdl-35513469

RESUMO

Relativistic collisionless shocks are considered responsible for particle energization mechanisms leading to particle acceleration. While electron energization in shock front region of electron/ion collisionless shocks are the most studied, the mechanism of electron energization in interaction with self-generated magnetic vortices (MVs) in the upstream region is still unclear. We investigate electron energization mechanism in the upstream region of electron/ion relativistic collisionless shocks, using two dimensional particle-in-cell (PIC) simulations. We discuss mechanism of electron energization which takes place in the upstream region of the shock, where the counter stream particles interact with incoming flow. The energy gain of electrons happens during their interaction with evolving fields of self-generated magnetic vortices in this region. Three Fermi-like electron energization scenarios are discussed. Stochastic acceleration of electrons in interaction with fields of MV leads to anisotropic heating of fast electrons due to diffusion in the momentum space of electrons and, finally, synergetic effect of evolving fields of MVs leads to the formation of a power-law tail of supra-thermal particles.

2.
Phys Rev Lett ; 113(8): 085001, 2014 Aug 22.
Artigo em Inglês | MEDLINE | ID: mdl-25192102

RESUMO

We visualize ps-time-scale evolution of an electron density bubble--a wake structure created in atmospheric density plasma by an intense ultrashort laser pulse--from the phase "streak" that the bubble imprints onto a probe pulse that crosses its path obliquely. Phase streaks, recovered in one shot using frequency-domain interferometric techniques, reveal the formation, propagation, and coalescence of the bubble within a 3 mm long ionized helium gas target. 3D particle-in-cell simulations validate the observed density-dependent bubble evolution, and correlate it with the generation of a quasimonoenergetic ∼ 100 MeV electron beam. The results provide a basis for understanding optimized electron acceleration at a plasma density n(e) ≈ 2 × 10(19) cm(-3), inefficient acceleration at lower density, and dephasing limits at higher density.

3.
Nat Commun ; 4: 1988, 2013.
Artigo em Inglês | MEDLINE | ID: mdl-23756359

RESUMO

Laser-plasma accelerators of only a centimetre's length have produced nearly monoenergetic electron bunches with energy as high as 1 GeV. Scaling these compact accelerators to multi-gigaelectronvolt energy would open the prospect of building X-ray free-electron lasers and linear colliders hundreds of times smaller than conventional facilities, but the 1 GeV barrier has so far proven insurmountable. Here, by applying new petawatt laser technology, we produce electron bunches with a spectrum prominently peaked at 2 GeV with only a few per cent energy spread and unprecedented sub-milliradian divergence. Petawatt pulses inject ambient plasma electrons into the laser-driven accelerator at much lower density than was previously possible, thereby overcoming the principal physical barriers to multi-gigaelectronvolt acceleration: dephasing between laser-driven wake and accelerating electrons and laser pulse erosion. Simulations indicate that with improvements in the laser-pulse focus quality, acceleration to nearly 10 GeV should be possible with the available pulse energy.

4.
Phys Rev Lett ; 107(14): 145003, 2011 Sep 30.
Artigo em Inglês | MEDLINE | ID: mdl-22107203

RESUMO

It is demonstrated that the performance of the self-modulated proton driver plasma wakefield accelerator is strongly affected by the reduced phase velocity of the plasma wave. Using analytical theory and particle-in-cell simulations, we show that the reduction is largest during the linear stage of self-modulation. As the instability nonlinearly saturates, the phase velocity approaches that of the driver. The deleterious effects of the wake's dynamics on the maximum energy gain of accelerated electrons can be avoided using side-injections of electrons, or by controlling the wake's phase velocity by smooth plasma density gradients.

5.
Phys Rev Lett ; 103(13): 135004, 2009 Sep 25.
Artigo em Inglês | MEDLINE | ID: mdl-19905519

RESUMO

The blowout (or bubble) regime of laser wakefield acceleration is promising for generating monochromatic high-energy electron beams out of low-density plasmas. It is shown analytically and by particle-in-cell simulations that self-injection of the background plasma electrons into the quasistatic plasma bubble can be caused by slow temporal expansion of the bubble. Sufficient criteria for the electron trapping and bubble's expansion rate are derived using a semianalytic nonstationary Hamiltonian theory. It is further shown that the combination of bubble's expansion and contraction results in monoenergetic electron beams.

7.
Artigo em Russo | MEDLINE | ID: mdl-6858492

RESUMO

Thirty alcoholic patients with remissions and one hundred alcoholics with relapses were followed up for three years using cross-section and longitudinal psychological examinations. The development of the psychic defect was shown to be related to the degree of personality degradation and the character of organic cerebral pathology. The patients with remissions displayed a greater reversibility of intellectual and mnemonic derangements; there was improvement in their memory and concentration levels as well as combinative abilities; their personal attitude to the study situation changed favourably. The patients with relapses in the course of disease were characterized by deteriorated capacities for memorization, analytic and synthetic mental processes as well as by increased exhaustibility, anxiety, and affective instability. Intellectual and mnemonic disorders in patients with alcoholic dementia were the least reversible.


Assuntos
Alcoolismo/psicologia , Inteligência , Memória , Transtorno Amnésico Alcoólico/diagnóstico , Atenção , Demência/etiologia , Feminino , Humanos , Masculino , Personalidade , Síndrome de Abstinência a Substâncias/psicologia
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