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[IEEE 2019 Conference on Lasers and Electro-Optics Europe & European Quantum Electronics Conference (CLEO/Europe-EQEC) - Munich, Germany (2019.6.23-2019.6.27)] 2019 Conference on Lasers and Electro-Optics Europe & European Quantum Electronics Conference (CLEO/Europe-EQEC) - Laser Engineered Surface Structures for Custom Design of Secondary Electron Yield

DOI:10.1109/cleoe-eqec.2019.8873330 出版年份:2019 更新时间:2025-09-11 14:15:04
摘要: Secondary Electron Yield (SEY) occurs in a system when a primary electron impinges a material’s surface and induces the emission of a 1st and potentially 2nd generation secondary electrons. The total number of secondary electrons per primary electron is the SEY. This phenomenon forms a highly challenging problem in many systems, for example in particle accelerators, where significant levels of SEY form as an electron cloud and can perturbate the circulating beams and generate a high level of heat load to be absorbed by cooling and cryogenics. The Large Hadron Collider (LHC) has a 54-km beam pipe in which copper-laminated steel beam-screens are placed in order to shield the beam pipes from heat loads, but inherently result in unwanted SEY. As such, the development of methods which mitigate the SEY are increasingly appealing, including surface texturing, shaping the geometry and orientation of patterns etched into the surfaces, and carbon-coating of the interior of the beam pipes in the Super Proton Synchrotron (SPS). Previously we have shown that nanosecond pulsed laser treatment of copper surfaces at 532 nm could significantly increase the optical absorbance of the surface, and furthermore reduce the SEY to close to 1. More recently we demonstrated that surface structures produced by a picosecond pulsed laser at 532nm exhibited SEY values below 1 and were successfully tested in a dipole magnet in the Super Proton Synchrotron (SPS) accelerator at CERN.
作者: David Bajek,Stefan Wackerow,Monika Sitko,Sergio Calatroni,Beniamino Di Girolamo,Amin Abdolvand
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Investigating the effects of laser-engineered surface structures on the reduction and control of Secondary Electron Yield (SEY) in materials used in particle accelerators.

Laser-engineered surface structures can significantly reduce and finely control SEY levels in materials used in particle accelerators. The aspect ratio of the trenches formed by laser treatment plays a crucial role in SEY reduction. Further studies are needed to understand the mechanisms behind SEY reduction and to optimize the laser treatment parameters for different applications.

The study is focused on copper surfaces and specific laser treatment parameters. The generalizability to other materials and conditions requires further investigation.

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