Compact, folded multi-pass cells for energy scaling of post-compression

Fuente: arXiv
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Main Authors: Schönberg, Arthur, Rajhans, Supriya, Escoto, Esmerando, Khodakovskiy, Nikita, Hariton, Victor, Farace, Bonaventura, Põder, Kristjan, Raab, Ann-Kathrin, Westerberg, Saga, Merdanov, Mekan, Viotti, Anne-Lise, Arnold, Cord L., Leemans, Wim P., Hartl, Ingmar, Heyl, Christoph M.
Format: Preprint
Published: 2024
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author Schönberg, Arthur
Rajhans, Supriya
Escoto, Esmerando
Khodakovskiy, Nikita
Hariton, Victor
Farace, Bonaventura
Põder, Kristjan
Raab, Ann-Kathrin
Westerberg, Saga
Merdanov, Mekan
Viotti, Anne-Lise
Arnold, Cord L.
Leemans, Wim P.
Hartl, Ingmar
Heyl, Christoph M.
author_facet Schönberg, Arthur
Rajhans, Supriya
Escoto, Esmerando
Khodakovskiy, Nikita
Hariton, Victor
Farace, Bonaventura
Põder, Kristjan
Raab, Ann-Kathrin
Westerberg, Saga
Merdanov, Mekan
Viotti, Anne-Lise
Arnold, Cord L.
Leemans, Wim P.
Hartl, Ingmar
Heyl, Christoph M.
contents Combining high peak and high average power has long been a key challenge of ultrafast laser technology, crucial for applications such as laser-plasma acceleration and strong-field physics. A promising solution lies in post-compressed ytterbium lasers, but scaling these to high pulse energies presents a major bottleneck. Post-compression techniques, particularly Herriott-type multi-pass cells (MPCs), have enabled large peak power boosts at high average powers but their pulse energy acceptance reaches practical limits defined by setup size and coating damage threshold. In this work, we address this challenge and demonstrate a novel type of compact, energy-scalable MPC (CMPC). By employing a novel MPC configuration and folding the beam path, the CMPC introduces a new degree of freedom for downsizing the setup length, enabling compact setups even for large pulse energies. We experimentally and numerically verify the CMPC approach, demonstrating post-compression of 8 mJ pulses from 1 ps down to 51 fs in atmospheric air using a cell roughly 45 cm in length at low fluence values. Additionally, we discuss the potential for energy scaling up to 200 mJ with a setup size reaching 2.5 m. Our work presents a new approach to high-energy post-compression, with up-scaling potential far beyond the demonstrated parameters. This opens new routes for achieving the high peak and average powers necessary for demanding applications of ultrafast lasers.
format Preprint
id arxiv_https___arxiv_org_abs_2409_02542
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Compact, folded multi-pass cells for energy scaling of post-compression
Schönberg, Arthur
Rajhans, Supriya
Escoto, Esmerando
Khodakovskiy, Nikita
Hariton, Victor
Farace, Bonaventura
Põder, Kristjan
Raab, Ann-Kathrin
Westerberg, Saga
Merdanov, Mekan
Viotti, Anne-Lise
Arnold, Cord L.
Leemans, Wim P.
Hartl, Ingmar
Heyl, Christoph M.
Optics
Combining high peak and high average power has long been a key challenge of ultrafast laser technology, crucial for applications such as laser-plasma acceleration and strong-field physics. A promising solution lies in post-compressed ytterbium lasers, but scaling these to high pulse energies presents a major bottleneck. Post-compression techniques, particularly Herriott-type multi-pass cells (MPCs), have enabled large peak power boosts at high average powers but their pulse energy acceptance reaches practical limits defined by setup size and coating damage threshold. In this work, we address this challenge and demonstrate a novel type of compact, energy-scalable MPC (CMPC). By employing a novel MPC configuration and folding the beam path, the CMPC introduces a new degree of freedom for downsizing the setup length, enabling compact setups even for large pulse energies. We experimentally and numerically verify the CMPC approach, demonstrating post-compression of 8 mJ pulses from 1 ps down to 51 fs in atmospheric air using a cell roughly 45 cm in length at low fluence values. Additionally, we discuss the potential for energy scaling up to 200 mJ with a setup size reaching 2.5 m. Our work presents a new approach to high-energy post-compression, with up-scaling potential far beyond the demonstrated parameters. This opens new routes for achieving the high peak and average powers necessary for demanding applications of ultrafast lasers.
title Compact, folded multi-pass cells for energy scaling of post-compression
topic Optics
url https://arxiv.org/abs/2409.02542