Average-power scalability of multi-cycle terahertz sources based on periodically poled lithium niobate stacks

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Dalton, Patrick J., Löscher, Robin, Vogel, Tim, Appleby, Robert B., Burt, Graeme, Jamison, Steven P., Hibberd, Morgan T., Graham, Darren M., Saraceno, Clara J.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914040166481920
author Dalton, Patrick J.
Löscher, Robin
Vogel, Tim
Appleby, Robert B.
Burt, Graeme
Jamison, Steven P.
Hibberd, Morgan T.
Graham, Darren M.
Saraceno, Clara J.
author_facet Dalton, Patrick J.
Löscher, Robin
Vogel, Tim
Appleby, Robert B.
Burt, Graeme
Jamison, Steven P.
Hibberd, Morgan T.
Graham, Darren M.
Saraceno, Clara J.
contents We demonstrate that narrowband multi-cycle terahertz (MC-THz) sources based on periodically-poled lithium niobate (PPLN) wafer stacks can be driven by high repetition-rate, high energy femtosecond ytterbium-doped lasers. Operating at 10-kHz repetition rate with up to 104 W of pump power on a 10-wafer stack, we measure 26.4 mW of THz average power for a narrowband multi-cycle source. We identify and quantify strong lensing effects causing dramatic beam focusing in 47 wafer stacks which act as a primary limitation in the current configuration, and present mitigation strategies for future scaling. This first study of high average power narrowband multi-cycle THz sources offers a path forward to Watt-level high repetition rate sources using thin lithium niobate plates.
format Preprint
id arxiv_https___arxiv_org_abs_2509_13060
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Average-power scalability of multi-cycle terahertz sources based on periodically poled lithium niobate stacks
Dalton, Patrick J.
Löscher, Robin
Vogel, Tim
Appleby, Robert B.
Burt, Graeme
Jamison, Steven P.
Hibberd, Morgan T.
Graham, Darren M.
Saraceno, Clara J.
Optics
We demonstrate that narrowband multi-cycle terahertz (MC-THz) sources based on periodically-poled lithium niobate (PPLN) wafer stacks can be driven by high repetition-rate, high energy femtosecond ytterbium-doped lasers. Operating at 10-kHz repetition rate with up to 104 W of pump power on a 10-wafer stack, we measure 26.4 mW of THz average power for a narrowband multi-cycle source. We identify and quantify strong lensing effects causing dramatic beam focusing in 47 wafer stacks which act as a primary limitation in the current configuration, and present mitigation strategies for future scaling. This first study of high average power narrowband multi-cycle THz sources offers a path forward to Watt-level high repetition rate sources using thin lithium niobate plates.
title Average-power scalability of multi-cycle terahertz sources based on periodically poled lithium niobate stacks
topic Optics
url https://arxiv.org/abs/2509.13060