We present experimental evidence of plasmonic-enhanced optical tweezers, of polystyrene beads in deionized water in the vicinity of metal-coated nanostructures. The optical tweezers operate with a continuous wave near-infrared laser. We employ a Cu/Au bilayer that significantly improves dissipation of heat generated by the trapping laser beam and avoid de-trapping from heat convection currents. We investigate the improvement of the optical trapping force and the effective trapping quality factor, and observe an exponential distance dependence of the trapping force from the nanostructures, indicative of evanescent plasmonic enhancement
Micromanipulation of dielectric objects, from polystyrene spheres to living cells, is achieved when ...
Optical tweezers are a very well-established technique that have developed into a standard tool for ...
Optically trapped nanoparticles can be used as efficient mobile probes of nanoscopic forces and temp...
Recent advances in nanotechnologies have prompted the need for tools to accurately and non-invasivel...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
Conventional optical tweezers, formed at the diffraction-limited focus of a laser beam, have become ...
This Perspective describes recent progress in optical trappings of nanoparticles based on localized ...
International audiencePlasmonic nanoapertures generate strong field gradients enabling efficient opt...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
International audiencePlasmonic nanoapertures generate strong field gradients enabling efficient opt...
International audiencePlasmonic nanoapertures generate strong field gradients enabling efficient opt...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
Controlled manipulation of nanoscale objects in fluids is relevant to both fundamental studies and t...
Micromanipulation of dielectric objects, from polystyrene spheres to living cells, is achieved when ...
Optical tweezers are a very well-established technique that have developed into a standard tool for ...
Optically trapped nanoparticles can be used as efficient mobile probes of nanoscopic forces and temp...
Recent advances in nanotechnologies have prompted the need for tools to accurately and non-invasivel...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
Conventional optical tweezers, formed at the diffraction-limited focus of a laser beam, have become ...
This Perspective describes recent progress in optical trappings of nanoparticles based on localized ...
International audiencePlasmonic nanoapertures generate strong field gradients enabling efficient opt...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
International audiencePlasmonic nanoapertures generate strong field gradients enabling efficient opt...
International audiencePlasmonic nanoapertures generate strong field gradients enabling efficient opt...
Nanostructure-enhanced optical trapping of polymer beads was investigated by means of fluorescence m...
Controlled manipulation of nanoscale objects in fluids is relevant to both fundamental studies and t...
Micromanipulation of dielectric objects, from polystyrene spheres to living cells, is achieved when ...
Optical tweezers are a very well-established technique that have developed into a standard tool for ...
Optically trapped nanoparticles can be used as efficient mobile probes of nanoscopic forces and temp...