dorsal/arxiv
View SchemaFew cycle pulse propagation
| Authors | P. Kinsler, G. H. C. New |
|---|---|
| Categories | |
| ArXiv ID | physics/0212016 |
| URL | https://arxiv.org/abs/physics/0212016 |
| DOI | 10.1103/PhysRevA.67.023813 |
| Journal | Phys. Rev. A 67, 023813 (2003). (v1 only) |
Abstract
We present a comprehensive framework for treating the nonlinear interaction of few-cycle pulses using an envelope description that goes beyond the traditional SVEA method. This is applied to a range of simulations that demonstrate how the effect of a $\chi^{(2)}$ nonlinearity differs between the many-cycle and few-cycle cases. Our approach, which includes diffraction, dispersion, multiple fields, and a wide range of nonlinearities, builds upon the work of Brabec and Krausz[1] and Porras[2]. No approximations are made until the final stage when a particular problem is considered. The original version (v1) of this arXiv paper is close to the published Phys.Rev.A. version, and much smaller in size.
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"abstract": "We present a comprehensive framework for treating the nonlinear interaction\nof few-cycle pulses using an envelope description that goes beyond the\ntraditional SVEA method. This is applied to a range of simulations that\ndemonstrate how the effect of a $\\chi^{(2)}$ nonlinearity differs between the\nmany-cycle and few-cycle cases. Our approach, which includes diffraction,\ndispersion, multiple fields, and a wide range of nonlinearities, builds upon\nthe work of Brabec and Krausz[1] and Porras[2]. No approximations are made\nuntil the final stage when a particular problem is considered.\n The original version (v1) of this arXiv paper is close to the published\nPhys.Rev.A. version, and much smaller in size.",
"arxiv_id": "physics/0212016",
"authors": [
"P. Kinsler",
"G. H. C. New"
],
"categories": [
"physics.optics"
],
"doi": "10.1103/PhysRevA.67.023813",
"journal_ref": "Phys. Rev. A 67, 023813 (2003). (v1 only)",
"title": "Few cycle pulse propagation",
"url": "https://arxiv.org/abs/physics/0212016"
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