Simulation Study of Energy Chirp Induced Effects in Laser Wakefield Accelerator Driven Free Electron Laser
Shan-You Teng, Wai-Keung Lau, Shih-Hung Chen, Wei-Yuan Chiang

TL;DR
This study uses detailed 3D simulations to analyze how energy chirp in laser wakefield accelerator electron beams hampers free electron laser performance, highlighting the importance of dechirping for optimal spectral and power output.
Contribution
It provides a comprehensive simulation analysis of energy chirp effects in LWFA-driven FELs, emphasizing the need for beam dechirping to enhance FEL performance.
Findings
Energy chirp causes FEL interactions at multiple frequencies.
Spectral purity is significantly degraded by energy chirp.
Dechirping improves radiation power saturation.
Abstract
Beam energy compression via chicane magnets has been proved to be an effective method to reduce the slice energy spread of electron beams generated by laser wakefield accelerators (LWFAs). This technique has been widely adopted by leading research teams in experiments targeting future compact, high-gain free electron lasers (FELs). However, after energy compression, a strong beam energy chirp is introduced into the electron beam, which substantially hinders the microbunching process and impairs spectral coherence. Here, we present a detailed, unaveraged three-dimensional simulation that examines the effects of this energy chirp, and the results can be applied to the design of a proposed LWFA-driven VUV FEL. The energy chirp in a LWFA-produced electron beam causes FEL interactions at multiple resonant frequencies across the entire electron bunch, simultaneously, which prevents sustained…
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