Huang T W, Zhou C T, Robinson A P L, Qiao B, Zhang H, Wu S Z, Zhuo H B, Norreys P A, He X T
HEDPS, Center for Applied Physics and Technology and School of Physics, Peking University, Beijing 100871, People's Republic of China.
Central Laser Facility, STFC Rutherford-Appleton Laboratory, Didcot, OX11 0QX, United Kingdom.
Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Nov;92(5):053106. doi: 10.1103/PhysRevE.92.053106. Epub 2015 Nov 16.
It is shown that the filamentation instability of relativistically intense laser pulses in plasmas can be mitigated in the case where the laser beam has an elliptically distributed beam profile. A high-power elliptical Gaussian laser beam would break up into a regular filamentation pattern-in contrast to the randomly distributed filaments of a circularly distributed laser beam-and much more laser power would be concentrated in the central region. A highly elliptically distributed laser beam experiences anisotropic self-focusing and diffraction processes in the plasma channel ensuring that the unstable diffractive rings of the circular case cannot be produced. The azimuthal modulational instability is thereby suppressed. These findings are verified by three-dimensional particle-in-cell simulations.
结果表明,在激光束具有椭圆分布光束轮廓的情况下,等离子体中相对论强激光脉冲的丝状不稳定性可以得到缓解。与圆形分布激光束的随机分布细丝不同,高功率椭圆高斯激光束会分解成规则的丝状图案,并且更多的激光功率会集中在中心区域。高度椭圆分布的激光束在等离子体通道中经历各向异性的自聚焦和衍射过程,确保不会产生圆形情况的不稳定衍射环。从而抑制了方位调制不稳定性。这些发现通过三维粒子模拟得到了验证。