Transition of proton energy scaling using an ultrathin target irradiated by linearly polarized femtosecond laser pulses

Particle acceleration using ultraintense, ultrashort laser pulses is one of the most attractive topics in relativistic laser-plasma research. We report proton and/or ion acceleration in the intensity range of 5×10(19) to 3.3×10(20) W/cm2 by irradiating linearly polarized, 30-fs laser pulses on 10-to...

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Veröffentlicht in:Physical review letters 2013-10, Vol.111 (16), p.165003-165003, Article 165003
Hauptverfasser: Kim, I Jong, Pae, Ki Hong, Kim, Chul Min, Kim, Hyung Taek, Sung, Jae Hee, Lee, Seong Ku, Yu, Tae Jun, Choi, Il Woo, Lee, Chang-Lyoul, Nam, Kee Hwan, Nickles, Peter V, Jeong, Tae Moon, Lee, Jongmin
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Sprache:eng
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Zusammenfassung:Particle acceleration using ultraintense, ultrashort laser pulses is one of the most attractive topics in relativistic laser-plasma research. We report proton and/or ion acceleration in the intensity range of 5×10(19) to 3.3×10(20) W/cm2 by irradiating linearly polarized, 30-fs laser pulses on 10-to 100-nm-thick polymer targets. The proton energy scaling with respect to the intensity and target thickness is examined, and a maximum proton energy of 45 MeV is obtained when a 10-nm-thick target is irradiated by a laser intensity of 3.3×10(20) W/cm2. The proton acceleration is explained by a hybrid acceleration mechanism including target normal sheath acceleration, radiation pressure acceleration, and Coulomb explosion assisted-free expansion. The transition of proton energy scaling from I(1/2) to I is observed as a consequence of the hybrid acceleration mechanism. The experimental results are supported by two- and three-dimensional particle-in-cell simulations.
ISSN:0031-9007
1079-7114
DOI:10.1103/physrevlett.111.165003