Laser-Driven Ion Acceleration from Plasma Micro-Channel Targets

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Abstract

Efficient energy boost of the laser-accelerated ions is critical for their applications in biomedical and hadron research. Achiev-able energies continue to rise, with currently highest energies, allowing access to medical therapy energy windows. Here, a new regime of simultaneous acceleration of ∼100 MeV protons and multi-100 MeV carbon-ions from plasma micro-channel targets is proposed by using a ∼10 20 W/cm 2 modest intensity laser pulse. It is found that two trains of overdense electron bunches are dragged out from the micro-channel and effectively accelerated by the longitudinal electric-field excited in the plasma channel. With the optimized channel size, these "superponderomotive" energetic electrons can be focused on the front surface of the attached plastic substrate. The much intense sheath electric-field is formed on the rear side, leading to up to ∼10-fold ionic energy increase compared to the simple planar geometry. The analytical prediction of the optimal channel size and ion maximum energies is derived, which shows good agreement with the particle-in-cell simulations.

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APA

Zou, D. B., Pukhov, A., Yi, L. Q., Zhou, H. B., Yu, T. P., Yin, Y., & Shao, F. Q. (2017). Laser-Driven Ion Acceleration from Plasma Micro-Channel Targets. Scientific Reports, 7. https://doi.org/10.1038/srep42666

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