Dissipative quadratic soliton mode-locked optical parametric oscillator
Jonathan Musgrave, Mingming Nie, Shu-Wei Huang

TL;DR
This paper introduces a novel passive mode-locking method for OPOs using dissipative quadratic solitons driven by intracavity cascaded quadratic nonlinearity, enabling tunable femtosecond pulse generation without external pump lasers.
Contribution
It demonstrates a new approach to femtosecond pulse generation in OPOs through in-situ nonlinearity engineering, bypassing the need for synchronized mode-locked lasers.
Findings
Generated bichromatic femtosecond DQSs at 1572 nm and 786 nm
Achieved pulse durations of 336 fs and 447 fs
Peak powers up to 150 W with 5% efficiency
Abstract
Femtosecond mode-locked lasers are foundational to ultrafast science, yet their spectral reach remains constrained by the finite emission bandwidth of available gain media. Optical parametric oscillators (OPOs) overcome this constraint but typically require complex synchronous pumping by external femtosecond lasers. Here we demonstrate a fundamentally different approach: passive mode-locking of a continuous-wave-driven, doubly resonant degenerate OPO via the spontaneous formation of femtosecond dissipative quadratic solitons (DQS). We show that phase-matched intracavity cascaded quadratic nonlinearity (PICQN), enabled by negligible pump-signal walk-off in a doubly resonant cavity, generates a non-local effective Kerr nonlinearity (EKN) that governs the cavity dynamics and drives soliton formation. The engineered EKN exceeds the intrinsic material Kerr nonlinearity by more than three…
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