We investigate the nonlinear propagation of light beams with complex phase and intensity structures, including a Gaussian-embedded vortex, a Bessel vortex, and a Bessel-cosine necklace. We employ a colloidal suspension of bio-synthesized plasmonic gold nanoparticles, where a self-defocusing response is mediated by absorption at the laser wavelength (532 nm). We show that, by means of nonlocal nonlinearity, these structured two-dimensional beams with on-axis singularity can counteract the diffraction of the dark core and guide therein a coaxial Gaussian probe of different wavelengths (633 nm) and lower intensities. Angular steering of the confined probe is also demonstrated by tilting the propagation direction of the pump
We synthesize colloidal nanosuspensions with negative polarizabilities and observe self-enhanced tra...
The study of metal nanoparticles plays a central role in the emerging novel technologies employing o...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...
We investigate the nonlinear propagation of light beams with complex phase and intensity structures,...
We carry out an experimental campaign to investigate the nonlinear self-defocusing propagation of si...
We demonstrate two different types of coupled beam propagation dynamics in colloidal gold nanosuspen...
We experimentally demonstrate guiding of a low-power probe beam (633 nm wavelength) by means of a li...
We study nonlinear propagation of light in colloidal suspension of metallic nanoparticles, in the re...
The control of nonlinear optical signals in nanostructured systems is pivotal to develop functional ...
Robust propagation of self-trapped light over distances exceeding 25 diffraction lengths has been de...
It has been conjectured for some time that colloidal suspensions can act as artificial self-guiding ...
In the past decade, the development of artificial materials exhibiting novel optical properties has ...
We demonstrate guiding of a strong infrared beam by a weak visible beam due to plasmonic-resonant so...
Encouraged by the capacity of surface plasmons to confine and propagate electromagnetic fields, wave...
The control of nonlinear optical signals in nanostructured systems is pivotal to develop functional ...
We synthesize colloidal nanosuspensions with negative polarizabilities and observe self-enhanced tra...
The study of metal nanoparticles plays a central role in the emerging novel technologies employing o...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...
We investigate the nonlinear propagation of light beams with complex phase and intensity structures,...
We carry out an experimental campaign to investigate the nonlinear self-defocusing propagation of si...
We demonstrate two different types of coupled beam propagation dynamics in colloidal gold nanosuspen...
We experimentally demonstrate guiding of a low-power probe beam (633 nm wavelength) by means of a li...
We study nonlinear propagation of light in colloidal suspension of metallic nanoparticles, in the re...
The control of nonlinear optical signals in nanostructured systems is pivotal to develop functional ...
Robust propagation of self-trapped light over distances exceeding 25 diffraction lengths has been de...
It has been conjectured for some time that colloidal suspensions can act as artificial self-guiding ...
In the past decade, the development of artificial materials exhibiting novel optical properties has ...
We demonstrate guiding of a strong infrared beam by a weak visible beam due to plasmonic-resonant so...
Encouraged by the capacity of surface plasmons to confine and propagate electromagnetic fields, wave...
The control of nonlinear optical signals in nanostructured systems is pivotal to develop functional ...
We synthesize colloidal nanosuspensions with negative polarizabilities and observe self-enhanced tra...
The study of metal nanoparticles plays a central role in the emerging novel technologies employing o...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...