Abstract
A two-stage proton acceleration scheme using present-day intense lasers and a unique target design is proposed. The target system consists of a hollow cylinder, inside which is a hollow cone, which is followed by the main target with a flat front and dish-like flared rear surface. At the center of the latter is a tapered proton layer, which is surrounded by outer proton layers at an angle to it. In the first acceleration stage, protons in both layers are accelerated by target normal sheath acceleration. The center-layer protons are accelerated forward along the axis and the side protons are accelerated and focused towards them. As a result, the side-layer protons radially compress as well as axially further accelerate the front part of the accelerating center-layer protons in the second stage, which are also radially confined and guided by the field of the fast electrons surrounding them. Two-dimensional particle-incell simulation shows that a 79fs 8.5×1020 W/cm 2 laser pulse can produce a proton bunch with ∼ 267MeV maximum energy and ∼ 9.5% energy spread, which may find many applications, including cancer therapy. © 2012 American Institute of Physics.
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Liu, J. L., Sheng, Z. M., Zheng, J., Wang, W. M., Yu, M. Y., Liu, C. S., & Zhang, J. (2012). Two-stage acceleration of protons from relativistic laser-solid interaction. In AIP Conference Proceedings (Vol. 1507, pp. 808–813). https://doi.org/10.1063/1.4773802
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