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Design concepts for a next generation light source at LBNL
Authors
C Adolphsen
A Allezy
+66 more
D Arbelaez
D Arenius
K Bane
K Baptiste
J Byrd
JN Corlett
C Daniels
S De Santis
W Delp
P Denes
Y Ding
R Donahue
L Doolittle
PJ Emma
D Filippetto
J Floyd
C Ginsburg
J Harkins
G Huang
Z Huang
JY Jung
R Kephart
AL Klebaner
D Li
T Luo
G Marcus
MT Monroy
C Nantista
GR Neil
CK Ng
H Nishimura
HD Nuhn
HA Padmore
C Papadopoulos
C Pappas
S Paret
G Penn
T Peterson
M Placidi
T Powers
JP Preble
S Prestemon
D Prosnitz
T Pui Lou
H Qian
J Qiang
A Ratti
M Reinsch
C Rivetta
D Robin
F Sannibale
RW Schoenlein
C Serrano
J Staples
C Steier
G Stupakov
A Sukhanov
C Sun
M Venturini
WL Waldron
W Wan
T Warwick
R Wells
R Wilcox
S Zimmermann
M Zolotorev
Publication date
1 December 2013
Publisher
eScholarship, University of California
Abstract
The NGLS collaboration is developing design concepts for a multi-beamline soft x-ray FEL array powered by a superconducting linear accelerator, operating with a high bunch repetition rate of approximately 1 MHz. The CW superconducting linear accelerator design is based on developments of TESLA and ILC technology, and is supplied by an injector based on a high-brightness, highrepetition- rate photocathode electron gun. Electron bunches from the linac are distributed by RF deflecting cavities to the array of independently configurable FEL beamlines with nominal bunch rates of ∼100 kHz in each FEL, with uniform pulse spacing, and some FELs capable of operating at the full linac bunch rate. Individual FELs may be configured for different modes of operation, including self-seeded and external-laser-seeded, and each may produce high peak and average brightness x-rays with a flexible pulse format, and with pulse durations ranging from femtoseconds and shorter, to hundreds of femtoseconds. In this paper we describe current design concepts, and progress in RandD activities. Copyright © 2013 CC-BY-3.0 and by the respective authors
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Last time updated on 25/12/2021