2015
DOI: 10.1103/physrevstab.18.021301
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Ion energy scaling under optimum conditions of laser plasma acceleration from solid density targets

Abstract: A new, maximum proton energy, ε, scaling law with the laser pulse energy, E L , has been derived for solid density foils from the results of 3D particle-in-cell simulations. Utilizing numerical modeling, protons are accelerated during interactions of the femtosecond relativistic laser pulses with the plain semitransparent targets of optimum thickness. The scaling, ε ∼ E 0.7 L , has been obtained for the wide range of laser energies, different spot sizes, and laser pulse durations. Our results show that the pro… Show more

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Cited by 32 publications
(42 citation statements)
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“…faster than the standard TNSA  . dependence associated with the ponderomotive scaling [1]) is similar to that what was observed in the [7] at lower laser intensities and predicted by the numerical simulations in [18], where this effect can be attributed to the enhancement of laser absorption with the intensity increase. Forward acceleration of the protons follows a fast-scaling TNSA scenario, as already observed in experiments at relatively low intensities.…”
Section: Gwangju 61005 Koreasupporting
confidence: 72%
See 1 more Smart Citation
“…faster than the standard TNSA  . dependence associated with the ponderomotive scaling [1]) is similar to that what was observed in the [7] at lower laser intensities and predicted by the numerical simulations in [18], where this effect can be attributed to the enhancement of laser absorption with the intensity increase. Forward acceleration of the protons follows a fast-scaling TNSA scenario, as already observed in experiments at relatively low intensities.…”
Section: Gwangju 61005 Koreasupporting
confidence: 72%
“…(e.g. [18] ). Since for TNSA protons ∝ , the intensity dependence of cavity accelerated protons is expected to be weaker than for TNSA if the absorption coefficient increases with intensity (I).…”
Section: Gwangju 61005 Koreamentioning
confidence: 99%
“…Such foils should typically have a multimicron thickness that makes them more robust in laser acceleration experiments in contrast to nanoscale solid dense foils, which require an extremely high intensity contrast ratio. Finally, we note that our simulations with low-density targets have demonstrated more than a twofold increase of proton energy compared with the increase in the case of solid dense foils of optimal submicron thickness [24].…”
mentioning
confidence: 99%
“…Most modern studies of ion acceleration by femto-and subpicosecond laser pulses are oriented to the use of thin plane solid-state targets (foils), which are most easy to produce (as compared, e.g., with a complex target [3]) and whose thickness can easily be optimized for given parameters of the laser pulse [4][5][6][7][8][9][10].…”
Section: Introductionmentioning
confidence: 99%
“…Directed Coulomb explosion of a solid-state foil has been thoroughly investigated for the conditions in which the foil is semi-transparent for the heating laser pulse and the inequality is satisfied [7,8], where is the plasma electron density, is the critical density, and is the standard dimensionless amplitude of the laser field with the wavelength and frequency . However, the practical implementation of this regime requires very high contrast of laser radiation to prevent the destruction of the foil (as a rule, a nanometer-thick one) before the arrival of the main laser pulse.…”
Section: Introductionmentioning
confidence: 99%