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Nonlinear matter wave optics
Nonlinear matter wave optics

femtosecond laser - UCSB - Optical Characterization Lab
femtosecond laser - UCSB - Optical Characterization Lab

... Due to high intensity, fs pulses can not be amplified as is. Recipe for the amplification: Chirped pulse amplifier (CPA) • Stretch the pulse in time, thus reducing the peak power (I = J / tpulse !) (typically the pulse is stretched up to hundreds of ps) • Amplify the stretched pulse • Compress the p ...
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Noncollinear parametric amplification in the near

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An Optical Pulse Generator from a Sinusoidal Optical Signal Using

... duty-cycle. By using one or more serially connected split-anddelay optical circuits [12,19], it turns out possible to produce temporally interleaved pulses thus increasing the rate of the output pulse train by NfINPUT, where N is an integer number. Since N ≥ 2, the train may be used to sample the or ...
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Femtosecond pulse propagation in silicon waveguides: Variational
Femtosecond pulse propagation in silicon waveguides: Variational

... they are coupled with each other. More to the point, they show which linear and nonlinear process affect a particular pulse parameter. Considerable physical insight is gained by noting that the pulse width in Eq. (12) is affected directly not only by the dispersion parameter (as expected) but also b ...
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Analysis and Compensation of Four Wave Mixing Products in

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offr-ee230

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Lecture 11

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10 fs ultrafast all-optical switching in polystyrene nonlinear photonic

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Noise-related resolution limit of dispersion measurements with white

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J. Spigulis. Side-emitting optical fibers brighten our world in new

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Fiber Optic Communications - New Mexico State University

Course code: EE412 Course title: Optical
Course code: EE412 Course title: Optical

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Bending What is Optical Fiber Dispersion?

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Introduction to Fiber Optics

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Multiwavelength pulse generator using time

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Design Considerations and Performance Comparison of High-Order Modulation Formats using OFDM

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Gaurav Chetna Josan - Department of Electrical Engineering

... Large quantities of data can be generated from different resources and powerful computer is required to process them. Just electronics are not enough for this and therefore OPTICS can provide some solutions. ...
Tristate and Gate Using Photonic Crystal
Tristate and Gate Using Photonic Crystal

ppt - University Of Oregon
ppt - University Of Oregon

{Description}
{Description}

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Optical rogue waves

Optical rogue waves are rare pulses of light analogous to rogue or freak ocean waves. The term optical rogue waves was coined to describe rare pulses of broadband light arising during the process of supercontinuum generation—a noise-sensitive nonlinear process in which extremely broadband radiation is generated from a narrowband input waveform—in nonlinear optical fiber. In this context, optical rogue waves are characterized by an anomalous surplus in energy at particular wavelengths (e.g., those shifted to the red of the input waveform) and/or an unexpected peak power. These anomalous events have been shown to follow heavy-tailed statistics, also known as L-shaped statistics, fat-tailed statistics, or extreme-value statistics. These probability distributions are characterized by long tails: large outliers occur rarely, yet much more frequently than expected from Gaussian statistics and intuition. Such distributions also describe the probabilities of freak ocean waves and various phenomena in both the man-made and natural worlds. Despite their infrequency, rare events wield significant influence in many systems. Aside from the statistical similarities, light waves traveling in optical fibers are known to obey the similar mathematics as water waves traveling in the open ocean (the nonlinear Schrödinger equation), supporting the analogy between oceanic rogue waves and their optical counterparts. More generally, research has exposed a number of different analogies between extreme events in optics and hydrodynamic systems. A key practical difference is that most optical experiments can be done with a table-top apparatus, offer a high degree of experimental control, and allow data to be acquired extremely rapidly. Consequently, optical rogue waves are attractive for experimental and theoretical research and have become a highly studied phenomenon. The particulars of the analogy between extreme waves in optics and hydrodynamics may vary depending on the context, but the existence of rare events and extreme statistics in wave-related phenomena are common ground.
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