DocumentCode
2843756
Title
Photonic crystal laser accelerator structures
Author
Cowan, B. ; Javanmard, M. ; Siemann, R.
Author_Institution
Stanford Linear Accelerator Center, CA, USA
Volume
3
fYear
2003
fDate
12-16 May 2003
Firstpage
1855
Abstract
Photonic crystals have great potential for use as laser-driven accelerator structures. A photonic crystal is a dielectric structure arranged in a periodic geometry. Like a crystalline solid with its electronic band structure, the modes of a photonic crystal lie in a set of allowed photonic bands. Similarly, it is possible for a photonic crystal to exhibit one or more photonic band gaps, with frequencies in the gap unable to propagate in the crystal. Thus photonic crystals can confine an optical mode in an all-dielectric structure, eliminating the need for metals and their characteristic losses at optical frequencies. We discuss several geometries of photonic crystal accelerator structures. Photonic crystal fibers (PCFs) are optical fibers which can confine a speed-of-light optical mode in vacuum. Planar structures, both two- and three-dimensional, can also confine such a mode, and have the additional advantage that they can be manufactured using common microfabrication techniques such as those used for integrated circuits. This allows for a variety of possible materials, so that dielectrics with desirable optical and radiation-hardness properties can be chosen. We discuss examples of simulated photonic crystal structures to demonstrate the scaling laws and trade-offs involved, and touch on potential fabrication processes.
Keywords
beam handling equipment; collective accelerators; optical losses; photonic crystals; all-dielectric structure; characteristic losses; crystalline solid; electronic band structure; optical frequencies; optical mode; optical-hardness properties; periodic geometry; photonic band gaps; photonic bands; photonic crystal fibers; photonic crystal laser accelerator structures; photonic crystal modes; potential fabrication processes; radiation-hardness properties; scaling laws; simulated photonic crystal structures; Crystallization; Dielectrics; Frequency; Geometrical optics; Laser modes; Optical losses; Optical propagation; Periodic structures; Photonic band gap; Photonic crystals;
fLanguage
English
Publisher
ieee
Conference_Titel
Particle Accelerator Conference, 2003. PAC 2003. Proceedings of the
ISSN
1063-3928
Print_ISBN
0-7803-7738-9
Type
conf
DOI
10.1109/PAC.2003.1288698
Filename
1288698
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