Publication | Closed Access
Z-scan theory based on a diffraction model
61
Citations
9
References
2003
Year
Optical MaterialsDiffraction ModelEngineeringNonlinear OpticsWave OpticLaser ApplicationsOptical MetrologyElectron DiffractionOptical PropertiesFresnel–kirchhoff Diffraction TheoryComputational ElectromagneticsOptical SystemsPhotonicsPhysicsNon-linear OpticDiffractionClassical OpticsAtomic PhysicsLaser Beam PropagationNonlinear CrystalsSynchrotron RadiationCrystallographyOptical PhysicX-ray DiffractionApplied PhysicsNonlinear Optical MediaOptical System AnalysisDiffractive Optic
Based on Fresnel–Kirchhoff diffraction theory, a diffraction model of nonlinear optical media interacting with a Gaussian beam has been set up that can interpret the Z-scan phenomenon in a new way. This theory not only is consistent with the conventional Z-scan theory for a small nonlinear phase shift but also can be used for larger nonlinear phase shifts. Numerical computations indicate that the shape of the Z-scan curve is greatly affected by the value of the nonlinear phase shift. The symmetric dispersionlike Z-scan curve is valid only for small nonlinear phase shifts (|Δϕ0| <π), but, with increasingly larger nonlinear phase shifts, the valley of the transmittance is severely suppressed and the peak is greatly enhanced. The power output through the aperture will oscillate with increasing nonlinear phase shift caused by the input laser power. The aperture transmittance will attenuate and saturate with increasing Kerr constant.
| Year | Citations | |
|---|---|---|
Page 1
Page 1