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Cascaded Multi-cycle terahertz driven ultrafast electron acceleration and manipulation

Terahertz (THz)-based electron acceleration and manipulation has recently been shown to be feasible and to hold tremendous promise as a technology for the development of next-generation, compact electron sources. Previous work has concentrated on structures powered transversely by short, single-cycl...

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Published in:arXiv.org 2019-10
Main Authors: Zhang, Dongfang, Fakhari, Moein, Cankaya, Huseyin, Calendron, Anne-Laure, Matlis, Nicholas H, Kärtner, Franz X
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Fakhari, Moein
Cankaya, Huseyin
Calendron, Anne-Laure
Matlis, Nicholas H
Kärtner, Franz X
description Terahertz (THz)-based electron acceleration and manipulation has recently been shown to be feasible and to hold tremendous promise as a technology for the development of next-generation, compact electron sources. Previous work has concentrated on structures powered transversely by short, single-cycle THz pulses, with mm-scale, segmented interaction regions that are ideal for acceleration of electrons in the sub- to few-MeV range where electron velocities vary significantly. However, in order to extend this technology to the multi-MeV range, investigation of approaches supporting longer interaction lengths is needed. Here, we demonstrate first steps in electron acceleration and manipulation using dielectrically-lined waveguides powered by temporally long, narrowband, multi-cycle THz pulses that co-propagate with the electrons. This geometry offers centimeter-scale single-stage interaction lengths and offers the opportunity to further increase interaction lengths by cascading acceleration stages that recycle the THz energy and rephase the interaction. We prove the feasibility of THz-energy recycling for the first time by demonstrating acceleration, compression and focusing in two sequential Al2O3-based dielectric capillary stages powered by the same multi-cycle THz pulse. Since the multi-cycle energy achievable using laser-based sources is currently a limiting factor for the maximum electron acceleration, THz energy recycling provides a key enabling factor for reaching relativistic energies with existing sources.
doi_str_mv 10.48550/arxiv.1910.06639
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subjects Aluminum oxide
Electron acceleration
Electron sources
Feasibility
Laser applications
Narrowband
Recycling
Time compression
Waveguides
title Cascaded Multi-cycle terahertz driven ultrafast electron acceleration and manipulation
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