Chirp assisted ion acceleration via relativistic self induced transparency
Shivani Choudhary, Amol R. Holkundkar

TL;DR
This study investigates how negatively chirped laser pulses enhance ion acceleration via relativistic self-induced transparency, leading to high-energy proton beams with mono-energetic characteristics.
Contribution
It introduces a novel approach using negatively chirped laser pulses to improve ion acceleration efficiency and produce mono-energetic proton bunches.
Findings
Negatively chirped pulses increase plasma transmission at higher densities.
Efficient electron heating creates stable electrostatic fields for ion acceleration.
Maximum proton energy reaches approximately 100 MeV under optimal conditions.
Abstract
We study the effect of the chirped laser pulse on the transmission and associated ion acceleration by the sub-wavelength target. In the chirped laser pulses, the pulse frequency has a temporal variation about its fundamental frequency, which manifests to the temporal dependence of the critical density (). In this work we used a chirp model which is beyond the linear approximation. For negatively (positively) chirped pulses, the high (low) frequency component of the pulse interacts with the target initially followed by the low (high) frequency component. The threshold plasma density for the transmission of the pulse is found to be higher for the negatively chirped laser pulses as compared to the unchirped or positively chirped pulses. The enhanced transmission of the negatively chirped pulses for higher densities () results in very efficient heating of the target electrons,…
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