Silicon nanowires are held and manipulated in controlled optical traps based on counter-propagating beams focused by low numerical aperture lenses. The double-beam configuration compensates light scattering forces enabling an in-depth investigation of the rich dynamics of trapped nanowires that are prone to both optical and hydrodynamic interactions. Several polarization configurations are used, allowing the observation of optical binding with different stable structure as well as the transfer of spin and orbital momentum of light to the trapped silicon nanowires. Accurate modeling based on Brownian dynamics simulations with appropriate optical and hydrodynamic coupling confirms that this rich scenario is crucially dependent on the non-sphe...
Optical control of nanoscale objects has recently developed into a thriving field of research with f...
We perform a comprehensive numerical analysis on the optical binding forces of a multiple-resonant s...
Materials that have subwavelength structure can add degrees of freedom to optical system design that...
Silicon nanowires are held and manipulated in controlled optical traps based on counter-propagating ...
Multiple scattering of light induces structured interactions, or optical binding forces, between col...
We measure, by photonic torque microscopy, the nonconservative rotational motion arising from the tr...
In this thesis I describe a number of studies to examine some high order effects of advanced trappin...
Semiconducting nanowires, such as ZnO and Si, are used in the fields of nanophotonics and nanoelectr...
Optically levitated nano-objects in vacuum are among the highest quality mechanical oscillators, and...
In this thesis I describe a number of novel techniques of combining dynamic optical tweezers with sp...
Nanomechanical photonic metamaterials provide a wealth of active switching, nonlinear, and enhanced ...
We demonstrate, for the first time, the trapping and manipulation of individual Si nanowires by ligh...
Silicon is a high refractive index material. Consequently, silicon nanowires (SiNWs) with diameters ...
We report on the optical trapping characteristics of InP nanowires with dimensions of 30 (±6) nm in ...
Plasmonic nanoparticles, typically gold and silver colloids, can be trapped by a highly focused Gaus...
Optical control of nanoscale objects has recently developed into a thriving field of research with f...
We perform a comprehensive numerical analysis on the optical binding forces of a multiple-resonant s...
Materials that have subwavelength structure can add degrees of freedom to optical system design that...
Silicon nanowires are held and manipulated in controlled optical traps based on counter-propagating ...
Multiple scattering of light induces structured interactions, or optical binding forces, between col...
We measure, by photonic torque microscopy, the nonconservative rotational motion arising from the tr...
In this thesis I describe a number of studies to examine some high order effects of advanced trappin...
Semiconducting nanowires, such as ZnO and Si, are used in the fields of nanophotonics and nanoelectr...
Optically levitated nano-objects in vacuum are among the highest quality mechanical oscillators, and...
In this thesis I describe a number of novel techniques of combining dynamic optical tweezers with sp...
Nanomechanical photonic metamaterials provide a wealth of active switching, nonlinear, and enhanced ...
We demonstrate, for the first time, the trapping and manipulation of individual Si nanowires by ligh...
Silicon is a high refractive index material. Consequently, silicon nanowires (SiNWs) with diameters ...
We report on the optical trapping characteristics of InP nanowires with dimensions of 30 (±6) nm in ...
Plasmonic nanoparticles, typically gold and silver colloids, can be trapped by a highly focused Gaus...
Optical control of nanoscale objects has recently developed into a thriving field of research with f...
We perform a comprehensive numerical analysis on the optical binding forces of a multiple-resonant s...
Materials that have subwavelength structure can add degrees of freedom to optical system design that...