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This book explores several key issues in beam phase space dynamics
in plasma-based wakefield accelerators. It reveals the phase space
dynamics of ionization-based injection methods by identifying two
key phase mixing processes. Subsequently, the book proposes a
two-color laser ionization injection scheme for generating
high-quality beams, and assesses it using particle-in-cell (PIC)
simulations. To eliminate emittance growth when the beam propagates
between plasma accelerators and traditional accelerator components,
a method using longitudinally tailored plasma structures as phase
space matching components is proposed. Based on the aspects above,
a preliminary design study on X-ray free-electron lasers driven by
plasma accelerators is presented. Lastly, an important type of
numerical noise-the numerical Cherenkov instabilities in
particle-in-cell codes-is systematically studied.
This book explores several key issues in beam phase space dynamics
in plasma-based wakefield accelerators. It reveals the phase space
dynamics of ionization-based injection methods by identifying two
key phase mixing processes. Subsequently, the book proposes a
two-color laser ionization injection scheme for generating
high-quality beams, and assesses it using particle-in-cell (PIC)
simulations. To eliminate emittance growth when the beam propagates
between plasma accelerators and traditional accelerator components,
a method using longitudinally tailored plasma structures as phase
space matching components is proposed. Based on the aspects above,
a preliminary design study on X-ray free-electron lasers driven by
plasma accelerators is presented. Lastly, an important type of
numerical noise-the numerical Cherenkov instabilities in
particle-in-cell codes-is systematically studied.
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