Cantitate/Preț
Produs

Ion acceleration and extreme light field generation based on ultra-short and ultra–intense lasers: Springer Theses

Autor Liangliang Ji
en Limba Engleză Hardback – 3 apr 2014
This book is dedicated to the relativistic (laser intensity above 1018 W/cm2) laser-plasma interactions, which mainly concerns two important aspects: ion acceleration and extreme-light-field (ELF). Based on the ultra-intense and ultra–short CP lasers, this book proposes a new method that significantly improves the efficiency of heavy-ion acceleration, and deals with the critical thickness issues of light pressure acceleration. More importantly, a series of plasma approaches for producing ELFs, such as the relativistic single-cycle laser pulse, the intense broad-spectrum chirped laser pulse and the ultra-intense isolated attosecond (10-18s) pulse are introduced. This book illustrates that plasma not only affords a tremendous accelerating gradient for ion acceleration but also serves as a novel medium for ELF generation, and hence has the potential of plasma-based optics, which have a great advantage on the light intensity due to the absence of device damage threshold.
Citește tot Restrânge

Toate formatele și edițiile

Toate formatele și edițiile Preț Express
Paperback (1) 63075 lei  6-8 săpt.
  Springer Berlin, Heidelberg – 3 sep 2016 63075 lei  6-8 săpt.
Hardback (1) 55157 lei  38-44 zile
  Springer Berlin, Heidelberg – 3 apr 2014 55157 lei  38-44 zile

Din seria Springer Theses

Preț: 55157 lei

Preț vechi: 68945 lei
-20% Nou

Puncte Express: 827

Preț estimativ în valută:
10559 10865$ 8901£

Carte tipărită la comandă

Livrare economică 25 februarie-03 martie

Preluare comenzi: 021 569.72.76

Specificații

ISBN-13: 9783642540066
ISBN-10: 3642540066
Pagini: 96
Ilustrații: XII, 84 p. 46 illus., 16 illus. in color.
Dimensiuni: 155 x 235 x 11 mm
Greutate: 0.27 kg
Ediția:2014
Editura: Springer Berlin, Heidelberg
Colecția Springer
Seria Springer Theses

Locul publicării:Berlin, Heidelberg, Germany

Public țintă

Research

Cuprins

Introduction.- Ion acceleration I: Efficient heavy ion acceleration by ESA.- Ion acceleration II: The critical target thickness in light sail acceleration.- Extreme light field generation I: Quasi-single-cycle relativistic laser pulse.- Extreme light field generation II: Short-wavelength single-cycle ultra-intense laser pulse.- Extreme light field generation III: Ultra-intense isolated attosecond pulse.- Summary.

Notă biografică

Liangliang Ji received his B. Sc. in physics from University of Science and Technology of China in 2006. He obtained his Ph. D. in physics in July 2011, from Shanghai Institute of Optics and Fine Mechanics, Chinese Academy of Sciences. During his Ph.D. study in the group of Prof. Baifei Shen,  he mainly worked on new particle acceleration schemes and extreme light field generation based on relativistic laser-plasma interaction. Later on, he won Alexander von Humboldt fellowship and became a post-doc fellow working with Prof. Alexander Pukhov at Duesseldorf University in Germany. His recent research interests include laser-ion acceleration and  the effects of quantum electrodynamics (QED) in strong relativistic laser-plasma interaction.

Textul de pe ultima copertă

This book is dedicated to the relativistic (laser intensity above 1018 W/cm2) laser-plasma interactions, which mainly concerns two important aspects: ion acceleration and extreme-light-field (ELF). Based on the ultra-intense and ultra-short CP lasers, this book proposes a new method that significantly improves the efficiency of heavy-ion acceleration, and deals with the critical thickness issues of light pressure acceleration. More importantly, a series of plasma approaches for producing ELFs, such as the relativistic single-cycle laser pulse, the intense broad-spectrum chirped laser pulse and the ultra-intense isolated attosecond (10-18s) pulse are introduced. This book illustrates that plasma not only affords a tremendous accelerating gradient for ion acceleration but also serves as a novel medium for ELF generation, and hence has the potential of plasma-based optics, which have a great advantage on the light intensity due to the absence of device damage threshold.

Caracteristici

Nominated as an outstanding Ph.D. thesis by Chinese Academy of Sciences Proposes a new method significantly improving the efficiency of heavy-ion acceleration Shows the potential of plasma-based relativistic optics for generating extreme light fields Includes supplementary material: sn.pub/extras