论文标题
血浆Wakefield加速器的排放毛细血管中纵向等离子体密度的演变
Evolution of longitudinal plasma-density profiles in discharge capillaries for plasma wakefield accelerators
论文作者
论文摘要
血浆源中等离子体密度的空间和时间演化的精确表征和定制对于实现血浆Wakefield加速器中高质量加速光束至关重要。同时使用两种独立的诊断技术允许具有前所未有的灵敏度对等离子体密度的时间和空间分辨检测,并使在放电毛细管中局部热力学平衡处的血浆温度表征。一种用于获得平均血浆密度的常见式两色激光干涉仪,其灵敏度为$ 2 \ times 10^{15} $ cm $ $^{ - 2} $与血浆发射光谱仪一起开发,用于分析光谱线扩展概况,并分析分辨率为$ 5 \ $ 5 \ times 10^^$ cm $ cm cm^$ cm^$ cm^3.-3^3.3^$ cm^3.3} $ cm。在应用光谱线扩展分析方法和carde {ñ} oso时,这两种诊断均显示出良好的一致性。测得的纵向分辨的等离子体密度曲线显示出从初始平面到高斯形状的明显时间演变,因为从毛细管中弹出材料,从毛细管中弹出材料,偏离了经常养育的扁平顶轮廓。对于密度为0.5- $ 2.5 \ times 10^{17} $ cm $^{ - 3} $的血浆,间接测量了1-7 eV的温度。这些测量值为粒子加速器和光束光学器件的等离子源中高度详细的参数调整铺平了道路。
Precise characterization and tailoring of the spatial and temporal evolution of plasma density within plasma sources is critical for realizing high-quality accelerated beams in plasma wakefield accelerators. The simultaneous use of two independent diagnostic techniques allowed the temporally and spatially resolved detection of plasma density with unprecedented sensitivity and enabled the characterization of the plasma temperature at local thermodynamic equilibrium in discharge capillaries. A common-path two-color laser interferometer for obtaining the average plasma density with a sensitivity of $2\times 10^{15}$ cm$^{-2}$ was developed together with a plasma emission spectrometer for analyzing spectral line broadening profiles with a resolution of $5\times 10^{15}$ cm$^{-3}$. Both diagnostics show good agreement when applying the spectral line broadening analysis methodology of Gigosos and Carde{ñ}oso. Measured longitudinally resolved plasma density profiles exhibit a clear temporal evolution from an initial flat-top to a Gaussian-like shape in the first microseconds as material is ejected out from the capillary, deviating from the often-desired flat-top profile. For plasma with densities of 0.5-$2.5\times 10^{17}$ cm$^{-3}$, temperatures of 1-7 eV were indirectly measured. These measurements pave the way for highly detailed parameter tuning in plasma sources for particle accelerators and beam optics.