Review of laser-driven ion sources and their applications
Обзор источников ионов с лазерным ускорением и их применений
2012-04-17
SCID: 54.1/nra9rc4f
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chirped pulse amplificationinertial confinement fusionlaser-driven ion accelerationproton accelerationultra-short high-intensity lasers
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Abstract (AI)
For many years, laser-driven ion acceleration, mainly proton acceleration, has been proposed and a number of proof-of-principle experiments have been carried out with lasers whose pulse duration was in the nanosecond range. In the 1990s, ion acceleration in a relativistic plasma was demonstrated with ultra-short pulse lasers based on the chirped pulse amplification technique which can provide not only picosecond or femtosecond laser pulse duration, but simultaneously ultra-high peak power of terawatt to petawatt levels. Starting from the year 2000, several groups demonstrated low transverse emittance, tens of MeV proton beams with a conversion efficiency of up to several percent. The laser-accelerated particle beams have a duration of the order of a few picoseconds at the source, an ultra-high peak current and a broad energy spectrum, which make them suitable for many, including several unique, applications. This paper reviews, firstly, the historical background including the early laser-matter interaction studies on energetic ion acceleration relevant to inertial confinement fusion. Secondly, we describe several implemented and proposed mechanisms of proton and/or ion acceleration driven by ultra-short high-intensity lasers. We pay special attention to relatively simple models of several acceleration regimes. The models connect the laser, plasma and proton/ion beam parameters, predicting important features, such as energy spectral shape, optimum conditions and scalings under these conditions for maximum ion energy, conversion efficiency, etc. The models also suggest possible ways to manipulate the proton/ion beams by tailoring the target and irradiation conditions. Thirdly, we review experimental results on proton/ion acceleration, starting with the description of driving lasers. We list experimental results and show general trends of parameter dependences and compare them with the theoretical predictions and simulations. The fourth topic includes a review of scientific, industrial and medical applications of laser-driven proton or ion sources, some of which have already been established, while the others are yet to be demonstrated. In most applications, the laser-driven ion sources are complementary to the conventional accelerators, exhibiting significantly different properties. Finally, we summarize the paper.
Key Findings
1
Laser-accelerated ion beams originate with few-picosecond duration, ultrahigh peak current, and broad energy spectra, enabling distinctive applications.
2
Since 2000, experiments have produced low-transverse-emittance proton beams reaching tens of MeV, with conversion efficiencies up to several percent.
3
The review develops simplified models linking laser, plasma, target, and beam parameters to spectral shapes, optimum conditions, maximum ion energy, and conversion efficiency.
4
The reviewed models indicate that tailoring targets and irradiation conditions can manipulate proton and ion beam properties, while experiments reveal trends compared with theoretical predictions and simulations.
5
Ultrashort chirped-pulse-amplification lasers enabled relativistic-plasma ion acceleration with picosecond-to-femtosecond durations and terawatt-to-petawatt peak powers.
Research Object
laser-driven proton and ion acceleration systems using ultra-short, high-intensity lasers and relativistic plasmas
Research Subject
acceleration mechanisms, beam properties, parameter scaling, and applications of laser-driven proton and ion beams
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2012-04-17
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