An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic environments, for which optical traps based on strongly localized electromagnetic fields around plasmonic nanostructures can provide a promising solution. Conventional plasmonics based trapping occurs at predefined spots on the surface of a nanopatterned substrate and is severely speed-limited by the diffusion of colloidal objects into the trapping volume. As we demonstrate, these limitations can be overcome by integrating plasmonic nanostructures with magnetically driven helical microrobots and maneuvering the resultant mobile nanotweezers (MNTs) under optical illumination. These nanotweezers can be remotely maneuvered within the bulk fluid an...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
In this work, we present a plasmonic platform capable of trapping nano-objects in two different spat...
An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic en...
Controlled manipulation of nanoscale objects in fluids is relevant to both fundamental studies and t...
Manipulation of colloidal objects with light is important in diverse fields. While performance of tr...
Nanophotonic devices, particularly plasmonic components, offer an unprecedented capability to signif...
Plasmon-enhanced optical trapping is being actively studied to provide efficient manipulation of nan...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
Optical tweezers and associated manipulation tools in the far field have had a major impact on scien...
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...
Optical tweezers are a highly versatile tool for exploration of the mesoscopic world, permitting non...
Optical tweezers and associated manipulation tools in the far field have had a major impact on scien...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
In this work, we present a plasmonic platform capable of trapping nano-objects in two different spat...
An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic en...
Controlled manipulation of nanoscale objects in fluids is relevant to both fundamental studies and t...
Manipulation of colloidal objects with light is important in diverse fields. While performance of tr...
Nanophotonic devices, particularly plasmonic components, offer an unprecedented capability to signif...
Plasmon-enhanced optical trapping is being actively studied to provide efficient manipulation of nan...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
Optical tweezers and associated manipulation tools in the far field have had a major impact on scien...
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...
Optical tweezers are a highly versatile tool for exploration of the mesoscopic world, permitting non...
Optical tweezers and associated manipulation tools in the far field have had a major impact on scien...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
International audienceNear-field optical forces arise from evanescent electromagnetic fields and can...
In this work, we present a plasmonic platform capable of trapping nano-objects in two different spat...