Circular polarization control for the European XFEL in the soft X-ray regime
- 1. European XFEL GmbH, Hamburg (Germany)
- 2. Deutsches Elektronen-Synchrotron (DESY), Hamburg (Germany)
Description
The possibility of producing X-ray radiation with high degree of circular polarization is an important asset at XFEL facilities. Polarization control is most important in the soft X-ray region.However, the baseline of the European XFEL, including the soft X-ray SASE3 line, foresees planar undulators only, yielding linearly-polarized radiation. It is clear that the lowest-risk strategy for implementing polarization control at SASE3 involves adding an APPLE II-type undulator at the end of the planar undulator, in order to exploit the micro bunching from the baseline FEL. Detailed experience is available in synchrotron radiation laboratories concerning the manufacturing of 5 m-long APPLE II undulators. However, the choice of a short helical radiator leads to the problem of background suppression. The driving idea of our proposal is that the background radiation can be suppressed by spatial filtering. This operation can be performed by inserting slits behind the APPLE II radiator, where the linearly-polarized radiation spot size is about 30 times larger than the radiation spot size from the helical radiator. The last 7 cells of the SASE3 undulator are left with an open gap in order to provide a total 42 m drift section for electron beam and radiation. Due to the presence of the drift the linearly-polarized radiation spot size increases, and the linearly polarized background radiation can be suppressed by the slits. At the same time, the microbunch structure is easily preserved, so that intense (100 GW) coherent radiation is emitted in the helical radiator. We propose a filtering setup consisting of a pair of water cooled slits for X-ray beam filtering and of a 5 m-long magnetic chicane, which creates an offset for slit installation immediately behind the helical radiator. Electrons and X-rays are separated before the slits by the magnetic chicane, so that the electron beam can pass by the filtering setup without perturbations. Based on start-to-end simulations we present complete calculations from the SASE3 undulator entrance up to the radiator exit including the modulated electron beam transport by the FODO focusing system in the low charge (20 pC) mode of operation. (orig.)
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Additional details
Publishing Information
- Imprint Pagination
- 16 p.
- ISSN
- 0418-9833
- Report number
- DESY--11-096
INIS
- Country of Publication
- Germany
- Country of Input or Organization
- Germany
- INIS RN
- 42076448
- Subject category
- S43: PARTICLE ACCELERATORS;
- Descriptors DEI
- BACKGROUND RADIATION; BEAM BUNCHING; BEAM PRODUCTION; BEAM TRANSPORT; ELECTRON BEAMS; EV RANGE 100-1000; FOCUSING; FREE ELECTRON LASERS; GEV RANGE 10-100; LASER RADIATION; MODULATION; ONDULATOR RADIATION; PHOTON BEAMS; POLARIZATION; POLARIZED BEAMS; SOFT X RADIATION; WIGGLER MAGNETS; X-RAY LASERS
- Descriptors DEC
- BEAM DYNAMICS; BEAMS; BREMSSTRAHLUNG; DYNAMICS; ELECTROMAGNETIC RADIATION; ENERGY RANGE; EQUIPMENT; EV RANGE; GEV RANGE; IONIZING RADIATIONS; LASERS; LEPTON BEAMS; MAGNETS; MECHANICS; PARTICLE BEAMS; RADIATIONS; X RADIATION