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TNSA ion acceleration at 10~(16) W/cm~2 sub-nanosecond laser intensity

机译:TNSA离子加速度为10〜(16)W / cm〜2亚纳秒激光强度

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Micrometric thin targets have been irradiated in vacuum in TNSA (Target Normal Sheath Acceleration) configuration at PALS Laboratory in Prague by using 10~(16) W/cm~2 laser intensity, 1315 nm wavelength, 300 ps pulse duration and different laser beam energies and focal positions.The plasmas produced were characterized by using ion collectors, semiconductor SiC detectors, X-ray streak camera and Thomson parabola spectrometer.Time of flight techniques, time resolved imaging and ion deflection spectrometry were used to characterize the laser-generated non-equilibrium plasma and the electric field driving ion acceleration developed at the rear side of the target.The maximum ion acceleration can be obtained for optimal film thickness depending on the laser energy and on the kind of irradiated targets.Special targets containing nanostructures, showing high absorption and low reflective coefficients, induce resonant absorption effects enhancing the electric acceleration field.The maximum kinetic energy measured for proton ions was above 5.0 MeV and the ion distributions can be fitted with Coulomb-Boltzmann shifted functions.
机译:通过使用10〜(16)W / cm〜2激光强度,1315nm波长,300ps脉冲持续时间和不同的激光束能量,在Palsa(目标正常鞘加速度)构造中在PALS实验室中的TNSA(目标正常鞘加速)配置中的真空辐照。和焦点位置。通过离子收集器,半导体SiC探测器,X射线条纹相机和汤姆森抛物线光谱仪为特征。一段飞行技术,时间分辨成像和离子偏转光谱法用于表征激光产生的非平衡等离子体和在目标后侧开发的电场驱动离子加速。根据激光能量和辐照靶的种类,可以获得最佳离子加速度的最佳离子加速度。含有纳米结构的特异性靶标,显示出高吸收和低反射系数,诱导谐振吸收效果增强电加速场。最大kine针对质子离子测量的TIC能量高于5.0 meV,离子分布可以配合使用库仑-Boltzmann偏移功能。

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