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Generation of VUV frequency combs in femtosecond enhancement cavityLee, Jane January 2010 (has links)
This dissertation is on the development of a laser system for the generation of femtosecond frequency combs in the vacuum-ultraviolet (VUV) via intracavity high-harmonic generation (HHG). The HHG process yields coherent vacuum ultraviolet (VUV) light resulting from the ionization of noble gases driven by intense near-IR femtosecond frequency combs in an optical enhancement cavity. An injection locked amplification cavity (fsAC) was developed in order to generate a high power femtosecond frequency combs based on a Ti:Sapphire oscillator. Detailed amplifier performance was investigated in order to evaluate the coherence of the pulse amplification process. A passive power enhancement cavity for fs pulses (fsEC) was designed for intracavity high harmonic generation. For maximum power enhancement and conversion efficiency, the intracavity dispersion was compensated and various design layouts tested. A careful analysis of the phase matching conditions was performed, taking into account the effect of reabsorption of the generated high harmonic light, to compare different cavity geometries and determine which would produce the most efficient harmonic yield. Numerical simulations were also performed to determine the level of intra-cavity ionization that could be sustained before disrupting the pulse enhancement process. Based on the results of these simulations and calculations, it was determined that for a xenon gas target, a moderate peak intensity of the order of ~ 5×10¹³W/cm² produces harmonics most efficiently.
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Phononic frequency combsGanesan, Adarsh January 2018 (has links)
Optical frequency combs have resulted in significant advances in optical frequency metrology and found wide application to precise physical measurements and molecular fingerprinting. A direct analogue of frequency combs in the phononic or acoustic domain has not been reported to date. This thesis describes a series of results to provide the first clear evidence for the generation of phononic frequency combs in the domain of micromechanical resonators. These results are supported by a theoretical framework which was originally developed to predict the existence of such features of combs in physical systems described by Fermi-Pasta-Ulam dynamics. The phononic frequency combs is mediated by nonlinear coupling between a primary driven mode and one or more parametrically excited internal modes. We provide experimental evidence for the formation of such phononic frequency combs in systems comprising of 2 or more coupled modes, with results qualitatively consistent with previous numerical studies based on Fermi-Pasta-Ulam dynamics. Additionally, externally pumped comb processes are also reported. Through systematic experiments at different drive frequencies and amplitudes, we portray the well-connected processes of phononic frequency comb formation and define attributes to control their concomitant features. Further, the interplay between these new nonlinear resonances and the well-established Duffing phenomenon is also discussed. While the experimental verification of the existence of phononic frequency combs is of scientific interest, several potential engineering applications exist including the unique capability to track resonant frequency of a micromechanical resonator without the requirement for an external feedback loop to sustain oscillations at the resonant frequency. The initial experimental results also demonstrate that good short-term frequency stability may be obtained for such micromechanical resonators operated under ambient conditions.
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DYNAMIC PULSED BEAM STEERING USING VIRTUALLY IMAGED PHASED ARRAYJie Wang (16642920) 26 July 2023 (has links)
<p>Optical beam steering is of significant importance for various emerging applications such as light detection and ranging (LiDAR), free space optical communication, and holographic display. However, the development of schemes for dynamic spatio-temporal beam steering has been limited in the past. A previous study achieved dynamic and continuous angular beam steering of isolated ultrashort pulses from a mode-locked laser by using a passive metasurface emulating a diffraction grating followed by a lens. In this thesis, we experimentally demonstrate dynamic spatio-temporal steering of high repetition rate pulse trains using a spatial array of frequency combs with a uniform gradient in their carrier-envelope offsets. To accomplish this, we leverage the capabilities of a virtually imaged phased array (VIPA), which is a side-entrance Fabry-Perot etalon, and employ successive spatial Fourier transforms facilitated by a 4f optical lens system. Our experimental results successfully demonstrate the periodic scanning of ultrashort pulse trains generated from an electro-optic comb at a repetition rate of ~10 GHz. The scanning occurs in discrete steps of ~115 μm and ~20 ps in the spatial and temporal domains, respectively.</p>
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External Cavity Mode-locked Semiconductor Lasers For The Generation Of Ultra-low Noise Multi-gigahertz Frequency Combs And Applications In Multi-heterodyne Detection Of Arbitrary Optical WaveformsDavila-Rodriguez, Josue 01 January 2013 (has links)
The construction and characterization of ultra-low noise semiconductor-based mode-locked lasers as frequency comb sources with multi-gigahertz combline-to-combline spacing is studied in this dissertation. Several different systems were built and characterized. The first of these systems includes a novel mode-locking mechanism based on phase modulation and periodic spectral filtering. This mode-locked laser design uses the same intra-cavity elements for both mode-locking and frequency stabilization to an intra-cavity, 1,000 Finesse, Fabry-Pérot Etalon (FPE). On a separate effort, a mode-locked laser based on a Slab-Coupled Optical Waveguide Amplifier (SCOWA) was built. This system generates a pulse-train with residual timing jitter of
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Wavelength Scale Resonant Structures For Integrated Photonic ApplicationsWeed, Matthew 01 January 2013 (has links)
An approach to integrated frequency-comb filtering is presented, building from a background in photonic crystal cavity design and fabrication. Previous work in the development of quantum information processing devices through integrated photonic crystals consists of photonic band gap engineering and methods of on-chip photon transfer. This work leads directly to research into coupled-resonator optical waveguides which stands as a basis for the primary line of investigation. These coupled cavity systems offer the designer slow light propagation which increases photon lifetime, reduces size limitations toward on-chip integration, and offers enhanced light-matter interaction. A unique resonant structure explained by various numerical models enables comb-like resonant clusters in systems that otherwise have no such regular resonant landscape (e.g. photonic crystal cavities). Through design, simulation, fabrication and test, the work presented here is a thorough validation for the future potential of coupled-resonator filters in frequency comb laser sources.
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Stable Optical Frequency Comb Generation And Applications In Arbitrary Waveform Generation, Signal Processing And Optical Data MOzharar, Sarper 01 January 2008 (has links)
This thesis focuses on the generation and applications of stable optical frequency combs. Optical frequency combs are defined as equally spaced optical frequencies with a fixed phase relation among themselves. The conventional source of optical frequency combs is the optical spectrum of the modelocked lasers. In this work, we investigated alternative methods for optical comb generation, such as dual sine wave phase modulation, which is more practical and cost effective compared to modelocked lasers stabilized to a reference. Incorporating these comblines, we have generated tunable RF tones using the serrodyne technique. The tuning range was ±1 MHz, limited by the electronic waveform generator, and the RF carrier frequency is limited by the bandwidth of the photodetector. Similarly, using parabolic phase modulation together with time division multiplexing, RF chirp extension has been realized. Another application of the optical frequency combs studied in this thesis is real time data mining in a bit stream. A novel optoelectronic logic gate has been developed for this application and used to detect an 8 bit long target pattern. Also another approach based on orthogonal Hadamard codes have been proposed and explained in detail. Also novel intracavity modulation schemes have been investigated and applied for various applications such as a) improving rational harmonic modelocking for repetition rate multiplication and pulse to pulse amplitude equalization, b) frequency skewed pulse generation for ranging and c) intracavity active phase modulation in amplitude modulated modelocked lasers for supermode noise spur suppression and integrated jitter reduction. The thesis concludes with comments on the future work and next steps to improve some of the results presented in this work.
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Modeling of optical microresonator frequency combsEkström, Michael January 2022 (has links)
An optical frequency comb is a structure of equidistant, coherent spectral components which can be thought of as a large array of individual phase-locked laser sources. Their utilization in precision spectroscopy garnering part of the 2005 Nobel prize, optical frequency combs constitute a relatively novel technology with a large number of potential and actual applications. The research interest grew further with the 2007 discovery of comb structures in microresonators enclosing a nonlinear Kerr medium pumped by an external continuous wave laser, offering both substantially wider combs and the prospect of chip-scale integration. In this thesis work, the modeling of frequency comb spectra generated through optical Kerr cavities is considered using both an Ikeda map and the mean-field Lugiato-Lefever equation to describe the intracavity field evolution. Derivations of these mathematical models are first reviewed alongside relevant physics. They are then treated analytically to constrain model parameters to regions of interest in the context of Kerr-comb dynamics. Finally, numerical parameter sweeps are conducted in both models with respect to the pump power and frequency detuning, where the Ikeda map is additionally examined in the high-energy regime not faithfully described by the Lugiato-Lefever equation. The produced phase diagrams reveal a complex landscape of dynamics including Turing patterns, temporal cavity solitons, breathers and chaos. Ikeda map parameters in the high-energy regime capable of supporting previously reported super energetic cavity solitons are also investigated. Lastly, the numerical simulation package developed for parameter sweeps is presented.
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Semiconductor Mode-locked Lasers for Applications in Multi-photon Imaging and Microwave PhotonicsPericherla, Srinivas Varma 01 January 2024 (has links) (PDF)
Semiconductor lasers are considered essential for the advancement in the field of photonics where compact and energy-efficient lasers are necessary. Advancements in integrated photonic technologies will help push the performance of semiconductor lasers in the coming years and expand the technology to several other applications. Semiconductor lasers offer several key features such as high energy efficiency, mass production, availability at a myriad of wavelengths, and high integration capabilities. However, limitations in noise performance, pulse energy, and duration hold back semiconductor lasers from being utilized to their full potential. This dissertation reviews the utilization and development of external techniques that enable semiconductor mode-locked lasers to be used in multi-photon imaging and microwave photonic applications. We first review a two-color external cavity mode-locked laser system operating at wavelengths 834 nm and 974 nm that can generate synchronized picosecond pulses with peak powers exceeding 80 W and 100 W respectively. We verify the feasibility of this system to induce non-linear processes by demonstrating two-photon excitation in commercially available dyes. Next, we introduce the concepts of optical injection locking and discuss the development of a multi-tone optical self-injection locking technique to improve the noise performance and optical linewidth of a chip-scale InP based mode-locked laser. We utilize a Fabry-Perot etalon as the optical comb filter, which also serves to suppress the super-mode noise that arises from external cavity feedback. In addition to this, we also implement a coupled opto-electronic loop and reference it to an external RF source demonstrating exceptional timing stability. This approach along with the usage of fully integrated and ultra-compact components in subsequent versions has the potential to realize compact frequency comb lasers for microwave photonic and other practical applications.
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Analyse et génération de signaux dans les boucles optiques à décalage de fréquence : analogie spatiale et nouveaux concepts d'auto-imagerie / Signal analysis and generation in optical frequency shifting loops : spatial analogy and new self-imaging conceptsSchnebelin, Côme 01 October 2018 (has links)
Les techniques de génération et de traitement des signaux souffrent des limitations intrinsèques des systèmes électroniques : bande passante limitée, sensibilité aux interférences électromagnétiques, encombrement et coût. Au contraire, les systèmes optiques s’affranchissent naturellement de ces contraintes et sont potentiellement très attractifs pour la génération et le traitement des signaux. Au cours de cette thèse, nous avons étudié un système optique original utilisé pour la photonique micro-onde : les boucles à décalage de fréquence.Les propriétés temporelles de ces boucles présentent un parallèle frappant avec certaines propriétés de l’effet Talbot en optique spatiale. Cette dualité s’est révélée particulièrement riche au cours de ce travail, car elle nous a conduits à démontrer de nombreuses propriétés à la fois en optique temporelle dans les boucles à décalage de fréquence, mais aussi en optique spatiale dans des montages simples de diffraction.Nous avons ainsi mis en évidence la possibilité de calculer analogiquement la transformée de Fourier et la transformée de Fourier fractionnaire d’un signal arbitraire, avec une très bonne résolution spectrale. Ceci nous a permis de mesurer le taux de « chirp » d’un signal à modulation linéaire de fréquence, ou d’améliorer le rapport signal sur bruit de certains signaux. Nous avons également montré la possibilité de générer des trains d’impulsions avec un taux de répétition ajustable, et de faire de la mise en forme spectrale de haute résolution, en amplitude et en phase. Ce résultat permet de générer des signaux arbitraires optiques ou radiofréquences, avec des bandes passantes de plusieurs dizaines de GHz et des durées pouvant aller jusqu’à plusieurs dizaines de ns.La richesse de la dualité entre l’optique spatiale et les boucles à décalage de fréquence nous a conduits à réinterpréter un certain nombre de propriétés de l’effet Talbot (formation des images, auto-réparation des images de Talbot) et à proposer des concepts nouveaux, tels que le contrôle des images de Talbot (période et taille) ou l’amplification d’image. / Signal generation and processing techniques suffer from intrinsic limitations of electronic systems: limited bandwidth, sensitivity to electromagnetic interference, bulk and cost. On the contrary, optical systems naturally overcome these constraints and are potentially very attractive for the generation and processing of signals. During this thesis, we studied an original optical system used for microwave photonics: frequency shifting loops.The temporal properties of these loops have a strong link with some properties of the Talbot effect in spatial optics. This duality has been successful during this work, because it led us to demonstrate many properties both in time optics in the frequency shifting loops, and in spatial optics with simple diffraction setup.We have thus demonstrated the possibility of analogically calculating the Fourier transform and the fractional Fourier transform of an arbitrary signal, with a very good spectral resolution. This allowed us to measure the "chirp" rate of a linearly frequency modulated signal, or to improve the signal-to-noise ratio of some signals. We have also shown the possibility to generate pulse trains with an adjustable repetition rate, and to make spectral shaping of high resolution, in amplitude and phase. This result has been used to generate arbitrary optical or radiofrequency signals with bandwidths of several tens of GHz and durations of up to several tens of ns.The properties of the duality between spatial optics and frequency shifting loops led us to reinterpret a number of properties of the Talbot effect (image formation, self-healing of Talbot images) and to propose new concepts, such as control of Talbot images (period and size) or image amplification.
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Raman optical frequency comb generation in hydrogen-filled hollow-core fiberWu, Chunbai, 1980- 12 1900 (has links)
xiv, 138 p. : ill. (some col.) / In this dissertation, we demonstrate the generation of optical Raman frequency combs by a single laser pump pulse traveling in hydrogen-filled hollow-core optical fibers. This comb generation process is a cascaded stimulated Raman scattering effect, where higher-order sidebands are produced by lower orders scattered from hydrogen molecules. We observe more than 4 vibrational and 20 rotational Raman sidebands in the comb. They span more than three octaves in optical wavelength, largely thanks to the broadband transmission property of the fiber.
We found that there are phase correlations between the generated Raman comb sidebands (spectral lines), although their phases are fluctuating from one pump pulse to another due to the inherit spontaneous initiation of Raman scattering. In the experiment, we generated two Raman combs independently from two fibers and simultaneously observed the single-shot interferences between Stokes and anti-Stokes components from the two fibers. The experimental results clearly showed the strong phase anti-correlation between first-order side bands. We also developed a quantum theory to describe this Raman comb generation process, and it predicts and explains the phase correlations we observe.
The phase correlation that we found in optical Raman combs may allow us to synthesize single-cycle optical pulse trains, creating attosecond pulses. However, the vacuum fluctuation in stimulated Raman scattering will result in the fluctuation of carrier envelope phase of the pulse trains. We propose that we can stabilize the comb by simultaneously injecting an auxiliary optical beam, mutually coherent with the main Raman pump laser pulse, which is resonant with the third anti-Stokes field. / Committee in Charge: Dr. Steven van Enk, Chair;
Dr. Michael G. Raymer;
Dr. Daniel A. Steck;
Dr. David M. Strom;
Dr. Andrew H. Marcus
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