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Alberto Rodriguez Cuevas

Publications and source records attributed to Alberto Rodriguez Cuevas.

3 recordsLinked to original sources

Self-starting Dynamics in All-fibre All-Normal-Dispersion Thulium Mamyshev oscillator

Ultrashort pulse formation from noise represents a fundamental self-organisation process in nonlinear dissipative systems and remains central to ultrafast photonics. Mamyshev oscillators offer a particularly valuable platform for investigating this phenomenon because they do not rely on conventional saturable absorbers. Instead, pulse formation is governed by self-phase modulation in normal-dispersion fibres combined with periodic offset spectral filtering. Achieving self-starting pulse formation in these systems is challenging, particularly at longer wavelengths, due to limited normal-dispersion components and the complex gain dynamics. This work reports, to the best of current knowledge, the first self-starting, all-fibre, all-normal-dispersion Thulium-doped Mamyshev oscillator operating near 1.9um. The cavity employs a compact Fabry-Perot design incorporating a dispersion-engineered Thulium-doped gain fibre, a highly nonlinear passive normal-dispersion fibre, and a pair of chirp-free broadband fibre Bragg gratings. The oscillator self-starts without external seeding or active modulation and stabilises noise-like pulse generation regime at a fundamental cavity repetition rate. Real-time measurements and numerical simulations reveal the build-up pathway from noise through transient multi-pulsing and pulse competition to a stationary noise-like envelope. Our results show that both tailored laser components and gain-medium-specific dynamics are essential for enabling self-starting ultrashort pulse generation in Mamyshev oscillators and for extending these laser concepts beyond the near-infrared, thereby facilitating the development of compact and robust shortwave infrared (SWIR) sources and new regimes of ultrafast self-organisation.

physics.optics

Polarisation multiplexing ring-cavity fibre laser for dual-comb generation

This thesis presents the development and characterisation of a polarisation-multiplexing ring-cavity fibre laser for dual-comb generation. It explores the underlying physics, implementation, and potential uses of this innovative laser system, especially in LIDAR technology. Conventional dual-frequency comb systems for metrology use two optical frequency combs synchronised via complex feedback loops, which suffer from phase-locking issues and raise system cost and fragility. In contrast, single-cavity dual comb systems generate two combs with slightly different repetition rates in the same cavity, ensuring mutual coherence and noise cancellation. However, these systems often display unstable regimes and are typically demonstrated only in laboratories. This thesis aims to design, build, characterise, and optimise a single-cavity polarisation multiplexed fibre laser that produces dual optical frequency combs with enough stability and precision for dual-comb LIDAR. The system simplifies generation while enhancing applicability. Secondary goals include analysing the laser intensity dynamics and collaborating with a company to address commercial needs and challenges in LIDAR, particularly under harsh conditions. Results show stable dual-comb generation with minimal drift (1 Hz per hour) and operation over 250 hours. The system achieves sub-millimetre precision in 5-metre ambiguity ranges with a fundamental frep of 39.25 MHz and Delta frep of 869 Hz. The findings confirm the regime's robustness for high-precision ranging while exposing some limits. The thesis also analyses build-up and propagation dynamics in a single cavity, showing a two-stage process and how initial spike energy evolution affects successful separation. Finally, it offers mitigation strategies for LIDAR systems in harsh environments.

physics.optics

Polarization dynamics, stability and tunability of a dual-comb polarization-multiplexing ring-cavity fiber laser

In this paper, we demonstrate the polarization-multiplexed system capable of generating two stable optical frequency combs with tunable frequency differences and a large extinction ratio. Also, the polarization dynamics of a dual-frequency comb generated from a single mode-locked Er-doped fiber laser are experimentally studied. The obtained results will extend the application to areas such as polarization spectroscopy and dual-comb-based polarimetry.

physics.optics