Physicists create unified model for breathing laser pulses

An international research team has developed a single mathematical framework that explains the unusual rhythmic behavior of breather laser pulses. The breakthrough unites two previously separate regimes of laser dynamics for the first time.

Researchers including Dr. Sonia Boscolo of Aston University published their findings in Physical Review Letters. The study shows that both fast and slow breathing cycles in ultrafast lasers arise from related physical processes rather than distinct mechanisms. Above-threshold breathers oscillate rapidly and lock to the cavity, while below-threshold breathers evolve slowly through Q-switching combined with soliton shaping.

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MIT terahertz microscope revealing quantum vibrations in a superconductor crystal, with scientists observing in a lab.
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MIT builds terahertz microscope to observe quantum motions in superconductors

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Physicists at MIT have developed a new microscope using terahertz light to directly observe hidden quantum vibrations inside a superconducting material for the first time. The device compresses terahertz light to overcome its wavelength limitations, revealing frictionless electron flows in BSCCO. This breakthrough could advance understanding of superconductivity and terahertz-based communications.

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