Title :
Compensation of Kerr self-focusing using negative phase shifts from the cascade quadratic nonlinearity
Author :
Beckwitt, K. ; Wise, F.W. ; LieJia Qian
Author_Institution :
Dept. of Appl. Phys., Cornell Univ., Ithaca, NY, USA
Abstract :
Summary form only given. When an intense beam propagates through a Kerr nonlinear medium, the beam´s transverse intensity profile generates a corresponding phase profile through,the intensity-dependent refractive index. The positive phase resulting from the Kerr nonlinearity (B-integral) underlies a number of physical processes, including whole-beam and small-scale self-focusing (SSSF). Self-focusing limits the peak power attainable by high energy lasers and amplifiers. We show in numerical simulation and experiment that negative Kerr-like phase shifts from cascade quadratic processes can compensate for the effects of SSSF, and cancel B-integral. We consider a two-stage system where an unchirped beam with transverse intensity modulation is incident on a Kerr medium, which generates positive phase and beam distortion due to SSSF. In the second stage, the distorted beam propagates through a quadratic medium, arranged to cancel the Kerr phase.
Keywords :
compensation; intensity modulation; laser beams; optical Kerr effect; optical phase shifters; B-integral; Kerr nonlinear medium; Kerr self-focusing compensation; cascade quadratic nonlinearity; intense beam propagation; negative Kerr-like phase shifts; negative phase shifts; numerical simulation; small-scale self-focusing; transverse intensity modulation; two-stage system; unchirped beam; whole-beam self-focusing; High power amplifiers; Laser beams; Laser theory; Nonlinear distortion; Numerical simulation; Optical propagation; Phase distortion; Power lasers; Quantum cascade lasers; Refractive index;
Conference_Titel :
Lasers and Electro-Optics, 2001. CLEO '01. Technical Digest. Summaries of papers presented at the Conference on
Conference_Location :
Baltimore, MD, USA
Print_ISBN :
1-55752-662-1
DOI :
10.1109/CLEO.2001.947485