Search arXivSearch

arXiv subjects

P. Malara

Publications and source records attributed to P. Malara.

3 recordsLinked to original sources

Sustained optothermal propulsion at the air-water interface by pulsating thermocapillary instability

In an axisymmetric meniscus lifted from a free water surface and locally heated through near infrared radiation by an optical fiber, natural buoyancy and geometric constraints confine the hot liquid near the apex. This confinement enhances the thermal gradient along the meniscus surface and, above a critical optical power, drives the system into an unstable convection regime. By analyzing the water refractive index oscillations at the meniscus apex and the simultaneous advection of nearby floating particles, we demonstrate that the instability is characterized by periodic thermocapillary pulses with tunable frequency and directionality. By controlling these features, we modulate the hydrodynamic forces generated by the pulsed surface flow and actuate particles at the meniscus interface in sustained oscillations or stable orbital trajectories. With about 20 mW optical power and particles ranging from 0.1 to 0.5 mm, rotational velocities up to 600 rpm are achieved, the highest reported for continuous optothermal actuation. Our results establish a highly efficient propulsion mechanism at fluid interfaces with potential applications in light-powered micromotors, interfacial transport and soft microrobotics. More broadly, the optically heated meniscus configuration provides a simple and adaptable platform for generating, controlling and detecting large thermocapillary instabilities on fluid surfaces.

physics.flu-dyn

Super-Resonant Intracavity Coherent Absorption

The capability of optical resonators to extend the effective radiation-matter interaction length originates from a multipass effect, hence is intrinsically limited by the resonator quality factor. Here, we show that this constraint can be overcome by combining the concepts of resonant interaction and coherent perfect absorption. We demonstrate and investigate super-resonant coherent absorption in a coupled Fabry-Perot-ring cavity structure. At the FP resonant wavelengths, the described phenomenon gives rise to split modes with a nearly-transparent peak and a peak whose transmission is exceptionally sensitive to the intracavity loss. For small losses, the effective interaction pathlength of these modes is proportional respectively to the ratio and the product of the individual finesse coefficients of the two resonators. The results presented extend the conventional definition of resonant absorption and point to a way of circumventing the technological limitations of ultrahigh-quality resonators in spectroscopy and optical sensing schemes

physics.optics

Enhanced sensing with quasi-degenerate mode in fiber Bragg gratings ring cavities

In this paper, we report the model and the experimental demonstration of a new optical resonator formed by inserting a Fiber Bragg Grating (FBG) in a closed fiber loop. The spectral characteristics of the ring depend on the reflectivity of the FBG. When the FBG reflectivity tends to zero, the overall resonant system exhibits the usual degenerate mode conditions. On the other hand, when the reflection coefficient FBG is not vanishing, the spectral features of the resonator display split resonant modes associated to the degeneracy removal of two counterpropagating modes that resonate within the cavity. The splitting magnitude is maximal in the region of maximum reflectivity of the FBG. Moreover, it varies by acting on the FBG physical parameters (e.g. strain, temperature, group index). By considering the spectral region where the splitting magnitude variation is almost maximal, i.e. quasi degenerate mode condition, we prove that the device can be used also as a slow light sensor by monitoring the power change associated with the applied strain showing, in this case, a sensitivity of 3.6x10^(6)x eps^(-1). To the best of our knowledge, this represents a factor 20 improvement over the best slow-light FBG sensors.

physics.optics