Multiphysics Analysis of Cryogenically Cooled Photocathode in a CW SRF Injector cavity

Fuente: arXiv
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Main Authors: Bazyl, Dmitry, Floettmann, Klaus, Vogel, Elmar, Zagorodnov, Igor
Format: Preprint
Published: 2025
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_version_ 1866911125724987392
author Bazyl, Dmitry
Floettmann, Klaus
Vogel, Elmar
Zagorodnov, Igor
author_facet Bazyl, Dmitry
Floettmann, Klaus
Vogel, Elmar
Zagorodnov, Igor
contents The paper evaluates the thermal regime of a cryogenically cooled copper photocathode integrated into a continuous-wave superconducting radio-frequency injector cavity with direct thermal contact. Such a photoinjector layout is being developed at DESY and has recently demonstrated a record-high 50 MV/m axial electric field in radio-frequency tests, marking an important milestone. To address the thermal effect of the picosecond excitation laser, we first develop a two-temperature model to describe the temperature of the emitting surface at cryogenic temperatures and solve it numerically. Subsequently, we present a one-temperature model of the bulk photocathode coupled with an electromagnetic model of the injector cavity. For the current injector design, we predict a negligible impact of the laser on the intrinsic quality factor of the cavity, identifying instead the cryogenic stability of the copper cathode as the primary operational limit. To overcome cooling challenges, we propose an improved configuration of the cathode plug. For the proposed geometry, the multiphysics analysis confirms stable performance at a nominal 2 W laser power, sufficient for 100 pC beams at 1 MHz under optimistic quantum efficiency assumptions. Operation at higher laser loads will benefit from further dedicated cryogenic analysis.
format Preprint
id arxiv_https___arxiv_org_abs_2508_11764
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Multiphysics Analysis of Cryogenically Cooled Photocathode in a CW SRF Injector cavity
Bazyl, Dmitry
Floettmann, Klaus
Vogel, Elmar
Zagorodnov, Igor
Accelerator Physics
Applied Physics
The paper evaluates the thermal regime of a cryogenically cooled copper photocathode integrated into a continuous-wave superconducting radio-frequency injector cavity with direct thermal contact. Such a photoinjector layout is being developed at DESY and has recently demonstrated a record-high 50 MV/m axial electric field in radio-frequency tests, marking an important milestone. To address the thermal effect of the picosecond excitation laser, we first develop a two-temperature model to describe the temperature of the emitting surface at cryogenic temperatures and solve it numerically. Subsequently, we present a one-temperature model of the bulk photocathode coupled with an electromagnetic model of the injector cavity. For the current injector design, we predict a negligible impact of the laser on the intrinsic quality factor of the cavity, identifying instead the cryogenic stability of the copper cathode as the primary operational limit. To overcome cooling challenges, we propose an improved configuration of the cathode plug. For the proposed geometry, the multiphysics analysis confirms stable performance at a nominal 2 W laser power, sufficient for 100 pC beams at 1 MHz under optimistic quantum efficiency assumptions. Operation at higher laser loads will benefit from further dedicated cryogenic analysis.
title Multiphysics Analysis of Cryogenically Cooled Photocathode in a CW SRF Injector cavity
topic Accelerator Physics
Applied Physics
url https://arxiv.org/abs/2508.11764