The beam-based alignment and feedback systems, essential for the future colliders, need high resolution Beam Position Monitors (BPM). In the framework of the European CARE/SRF program, the task of CEA/DSM/DAPNIA covers the design, the fabrication and the beam test of these BPMs in collaboration with DESY. The objective of this program is the production of a BPM that has a resolution five times better than the existing device while maintaining a high time resolution and which can be used in a clean environment at cryogenic temperature. Two prototypes of this monitor, based on a radio-frequency cavity with a beam pipe diameter of 78 mm, are installed on the Free Electron LASer in Hamburg (FLASH).
We report results on the performance of a free-electron laser operating at a wavelength of 13.7 nm where unprecedented peak and average powers for a coherent extreme-ultraviolet radiation source have been measured. In the saturation regime, the peak energy approached 170 µJ for individual pulses, and the average energy per pulse reached 70 µJ. The pulse duration was in the region of 10 fs, and peak powers of 10 GW were achieved. At a pulse repetition frequency of 700 pulses per second, the average extreme-ultraviolet power reached 20 mW. The output beam also contained a significant contribution from odd harmonics of approximately 0.6% and 0.03% for the 3rd (4.6 nm) and the 5th (2.75 nm) harmonics, respectively. At 2.75 nm the 5th harmonic of the radiation reaches deep into the water window, a wavelength range that is crucially important for the investigation of biological samples.
A high resolution Beam Position Monitor (BPM) is necessary for the beam‐based alignment systems of high energy and low emittance electron linacs. Such a monitor is developed in the framework of the European CARE/SRF programme, in a close collaboration between DESY and CEA/DSM/DAPNIA. This monitor is a radiofrequency re‐entrant cavity, which can be used either at room or cryogenic temperature, in an environment where dust particle contamination has to be avoided, such as superconducting cavities in a cryomodule. A first prototype of a re‐entrant BPM has already delivered measurements at 2K. inside the first cryomodule (ACC1) on the TESLA Test Facility 2 (TTF2). The performances of this BPM are analyzed both experimentally and theoretically, and the limitations of this existing system clearly identified. A new cavity and new electronics have been designed in order to improve the position resolution down to 1 μm and the damping time down to 10 ns.