Mechanical oscillations in lasing microspheres
A.Toncelli, N. E. Capuj, B. Garrido, M. Sledzinska, C. M., Sotomayor-Torres, A. Tredicucci, D. Navarro-Urrios

TL;DR
This study explores the activation and modulation of mechanical oscillations in lasing microspheres using optical techniques, revealing potential for optomechanical control but facing current limitations in resonant excitation.
Contribution
Demonstrated optical modulation of mechanical modes in lasing microspheres and analyzed factors affecting resonant excitation of these modes.
Findings
Mechanical eigenmodes detected in 50-70 MHz range.
Probe signal modulated up to 20 MHz independent of lasing.
Modulation attributed to free-carrier dispersion, not thermal effects.
Abstract
We investigate the feasibility of activating coherent mechanical oscillations in lasing microspheres by modulating the laser emission at a mechanical eigenfrequency. To this aim, 1.5% Nd3+:Barium-Titanium-Silicate microspheres with diameters around 50 {\mu}m were used as high quality factor (Q>10^6) whispering gallery mode lasing cavities. We have implemented a pump-and-probe technique in which the pump laser used to excite the Nd3+ ions is focused on a single microsphere with a microscope objective and a probe laser excites a specific optical mode with the evanescent field of a tapered fibre. The studied microspheres show monomode and multi-mode lasing action, which can be modulated in the best case up to 10 MHz. We have optically transduced thermally-activated mechanical eigenmodes appearing in the 50-70 MHz range, the frequency of which decreases with increasing the size of the…
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