Title :
Optical injector of particles for X-ray diffractive imaging
Author :
Kirian, Richard A. ; Eckerskorn, Niko ; Rode, A.V. ; Kupper, Jochen ; DePonte, Daniel P. ; Chapman, Henry N.
Author_Institution :
Center for Free-Electron Laser Sci., DESY, Hamburg, Germany
Abstract :
Motivated by the need for new single particle sample delivery methods to be used with coherent diffractive imaging program, an optical pipeline to produce a highly collimated stream of particles in either gaseous or vacuum environments was developed. First results to guide particles with micron-size precision in gaseous and vacuum environments using a first order quasi-Bessel beam operating either independently or collinear with a particle laden gas stream produced by an aerodynamic lens are reported. The centimeter long, low divergence, optical pipeline is formed by a first order Laguerre-Gaussian beam imaged trough an axicon. When used in conjunction with an aerodynamic lens, the optical forces assist the migration of particles to the centerline of the gas flow. This produces a higher particle number density and therefore an easier target to hit when probing with a Free Electron Laser (FEL) or other pulsed source. Estimated optical forces exerted on the particles and the stiffness of trapping in the transverse plane, both depending on the particle size, optical reflectance, laser power, and background-gas pressure, are demonstrated.
Keywords :
X-ray diffraction; aerodynamics; free electron lasers; laser beams; lenses; light reflection; optical images; particle size; radiation pressure; FEL; X-ray diffractive imaging; aerodynamic lens; axicon; background-gas pressure; coherent diffractive imaging program; first order Laguerre-Gaussian beam; first order quasiBessel beam; free electron laser; gas flow; gaseous environments; highly collimated particle stream; laser power; low divergence optical pipeline; optical forces; optical injector; optical reflectance; particle injector; particle laden gas stream; particle migration; particle number density; particle size; particle trapping; single particle sample delivery methods; vacuum environments; Laser beams; Optical diffraction; Optical imaging; Optical reflection; Optical vortices; Particle beam optics; Ultrafast optics;
Conference_Titel :
Lasers and Electro-Optics Europe (CLEO EUROPE/IQEC), 2013 Conference on and International Quantum Electronics Conference
Conference_Location :
Munich
Print_ISBN :
978-1-4799-0593-5
DOI :
10.1109/CLEOE-IQEC.2013.6801521