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Initializing anisotropic electron velocity distribution functions in optical-field ionized plasmas

机译:初始化光场电离等离子体中的各向异性电子速度分布功能

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Optical-field ionization (OFI) is often used to produce plasmas for myriad laboratory applications. OFI of gases is known to generate electrons that have anisotropic distributions. In this paper we show that at the time of plasma formation the electron velocity distribution functions can be controlled by changing the wavelength and polarization of the pump laser and ionization state of the plasma. Thomson scattering is used to measure the distinct electron velocity distributions of helium plasmas produced by linearly and circularly polarized laser pulses within a few inverse plasma periods after the plasma formation. In both cases, non-thermal and highly anisotropic initial electron distributions are observed that are consistent with expectations from OFI of both He electrons.
机译:光场电离(OFI)通常用于为多种实验室应用生产等离子体。 已知气体的ofi产生具有各向异性分布的电子。 在本文中,我们表明,在等离子体地层时,可以通过改变泵激光和等离子体的电离状态的波长和极化来控制电子速度分布功能。 汤姆森散射用于测量等离子体形成后几个逆等离子体周期内通过线性和圆偏振激光脉冲产生的氦等离子体的不同电子速度分布。 在这两种情况下,观察到非热和高各向同性初始电子分布,这与何种电子的期望一致。

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