株式会社極東書店トップ商品一覧Longitudinally Polarised Terahertz Radiation for Relativistic Particle Acceleration. Softcover reprint of the original 1st ed. 2017

商品詳細

Longitudinally Polarised Terahertz Radiation for Relativistic Particle Acceleration. Softcover reprint of the original 1st ed. 2017

Longitudinally Polarised Terahertz Radiation for Relativistic Particle Acceleration. Softcover reprint of the original 1st ed. 2017

・ISBN 978-3-319-83983-7 paper EUR 99.99

¥26,726.- (税込) (※)価格はご注文時の参考価格となります。
納品価格につきましては書籍の入荷時点で確定となります。
版元の原価改定、外国為替の変動等により異なる場合がございますので、予めご了承下さい。

お気に入り
著者・編者Cliffe, Matthew. J,
シリーズ (Springer Theses)
出版社 (Springer International Publishing AG, SZ)
出版年月2018
ページ数150 pp.
言語ENG
ニュース番号<A04-62363>

解説

This book elaborates on the acceleration of charged particles with ultrafast terahertz electromagnetic radiation. It paves the way for new, and improves many aspects of current, accelerator applications. These include providing shorter electron bunches for ultrafast time-resolved pump-probe spectroscopy, enabling complex longitudinal profiles to be imparted onto charged particle bunches and significantly improving the ability to synchronise an accelerator to an external laser.
The author has developed new sources of terahertz radiation with attractive properties for accelerator-based applications. These include a radially biased large-area photoconductive antenna (PCA) that provided the largest longitudinally polarised terahertz electric field component ever measured from a PCA. This radially biased PCA was used in conjunction with an energy recovery linear accelerator for electron acceleration experiments at the Daresbury Laboratory. To achieve even higher longitudinally polarised terahertz electric field strengths, and to be able to temporally tune the terahertz radiation, the author investigated generation within non-linear optical crystals. He developed a novel generation scheme employing a matched pair of polarity inverted magnesium-oxide doped stoichiometric lithium niobate crystals, which made it possible to generate longitudinally polarised single-cycle terahertz radiation with an electric field amplitude an order of magnitude larger than existing sources.