1.

Record Nr.

UNINA9910745586603321

Autore

Deng Xiujie (Tsinghua University.)

Titolo

Theoretical and Experimental Studies on Steady-State Microbunching / / by Xiujie Deng

Pubbl/distr/stampa

Singapore : , : Springer Nature Singapore : , : Imprint : Springer, , 2024

ISBN

981-9958-00-8

Edizione

[1st ed. 2024.]

Descrizione fisica

1 online resource (xii, 160 pages) : illustrations (some color)

Collana

Springer Theses, Recognizing Outstanding Ph.D. Research, , 2190-5061

Classificazione

SCI051000SCI053000SCI074000TEC021020

Disciplina

539.73

Soggetti

Particle accelerators

Synchrotrons

Lasers

Harmonics (Electric waves)

X-rays

Photonics

Quantum optics

Accelerator Physics

Synchrotron Techniques

Laser

Harmonics and X-Ray generation

Ultrafast Photonics

Quantum Optics

Lingua di pubblicazione

Inglese

Formato

Materiale a stampa

Livello bibliografico

Monografia

Nota di contenuto

Introduction -- SSMB Longitudinal Dynamics -- SSMB Transverse-Longitudinal Coupling Dynamics -- SSMB Radiation -- Formulation of Radiation from a Rigid Beam -- SSMB Proof-of-Principle Experiments. Summary. .

Sommario/riassunto

This open access book is devoted to the theoretical and experimental studies of a novel accelerator light source mechanism called steady-state microbunching (SSMB) which promises high-power, high-repetition rate, narrow-band coherent radiation in an electron storage ring. The contribution of this dissertation consists of three parts: first,



answers the question of how to realize SSMB from a beam dynamics perspective; second, reveals what radiation characteristics can we obtain from the formed SSMB; and third, experimentally demonstrates the working mechanism of SSMB in a real machine for the first time. The highlights of this book can be summarized as: Presents the first proof-of-principle experiment of a promising accelerator light source mechanism; Covers precision longitudinal and transverse-longitudinal coupling dynamics in a storage ring; Provides useful formulas and example parameters for high-power infrared, EUVand soft X-ray light source design. .