Microbunch rotation in an x-ray free-electron laser using a first-order achromatic bend

Author:

Margraf Rachel A.1ORCID,MacArthur James P.1,Marcus Gabriel1ORCID,Nuhn Heinz-Dieter1ORCID,Lutman Alberto1ORCID,Halavanau Aliaksei1ORCID,Zhang Zhen1ORCID,Huang Zhirong1ORCID

Affiliation:

1. SLAC National Accelerator Laboratory

Abstract

Electrons in an x-ray free electron laser (XFEL) develop periodic density fluctuations, known as microbunches, which enable the exponential gain of x-ray power in an XFEL. When an electron beam microbunched at a hard x-ray wavelength is kicked, microbunches are often washed out due to the dispersion and R56 of the bend. An achromatic (dispersion-free) bend with a small R56, however, can preserve microbunches, which rotate to follow the new trajectory of the electron bunch. Rotated microbunches can subsequently interact in a repointed undulator to produce a new beam of off-axis x rays. In this work, we demonstrate hard x-ray multiplexing in the Linac Coherent Light Source hard x-ray undulator line using microbunch rotation through a 10μrad first-order-achromatic bend created by transversely offsetting quadrupole magnets in the FODO lattice. Quadrupole offsets are determined analytically from beam-matrix theory. We also discuss the application of microbunch rotation to out-coupling a cavity-based XFEL. Published by the American Physical Society 2024

Funder

U.S. Department of Energy

Publisher

American Physical Society (APS)

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