Controlled manipulation of nanoscale objects in fluids is relevant to both fundamental studies and technological advances in nanotechnology. While standard techniques of nanomanipulation, such as optical and plasmonic tweezers have limitations in simultaneous trapping and transport of nanoscale cargo, magnetically driven plasmonic nanorobots under optical illumination provide a promising solution. These so called mobile nanotweezers (MNT) use strongly localized electromagnetic field near plasmonic nanostructures to trap objects with high efficiency and can simultaneously be driven by magnetic fields to selectively trap, transport and release colloidal cargo. Upon illumination, apart from strong optical gradient forces due to local electric ...
Optical tweezers are a very well-established technique that have developed into a standard tool for ...
This dissertation presents and explores a technique to confine and manipulate single and multiple na...
This dissertation presents and explores a technique to confine and manipulate single and multiple na...
An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic en...
An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic en...
Plasmon-enhanced optical trapping is being actively studied to provide efficient manipulation of nan...
Nanophotonic devices, particularly plasmonic components, offer an unprecedented capability to signif...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
International audiencePlasmonic nanotweezers use intense electric field gradients to generate optica...
Optofluidics: Light forces for controlling heat nanosources and fluid flows New opportunities for co...
Recent advances in nanotechnologies have prompted the need for tools to accurately and non-invasivel...
Double Nanohole Plasmonic Tweezers (DNH) have revolutionized particle trapping capabilities, enablin...
Optical manipulation of plasmonic nanoparticles provides opportunities for fundamental and technical...
We present experimental evidence of plasmonic-enhanced optical tweezers, of polystyrene beads in dei...
Manipulation of colloidal objects with light is important in diverse fields. While performance of tr...
Optical tweezers are a very well-established technique that have developed into a standard tool for ...
This dissertation presents and explores a technique to confine and manipulate single and multiple na...
This dissertation presents and explores a technique to confine and manipulate single and multiple na...
An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic en...
An important goal in nanotechnology is to control and manipulate submicrometer objects in fluidic en...
Plasmon-enhanced optical trapping is being actively studied to provide efficient manipulation of nan...
Nanophotonic devices, particularly plasmonic components, offer an unprecedented capability to signif...
Optical manipulation – using light to control matter – is based on the transfer of momentum from con...
International audiencePlasmonic nanotweezers use intense electric field gradients to generate optica...
Optofluidics: Light forces for controlling heat nanosources and fluid flows New opportunities for co...
Recent advances in nanotechnologies have prompted the need for tools to accurately and non-invasivel...
Double Nanohole Plasmonic Tweezers (DNH) have revolutionized particle trapping capabilities, enablin...
Optical manipulation of plasmonic nanoparticles provides opportunities for fundamental and technical...
We present experimental evidence of plasmonic-enhanced optical tweezers, of polystyrene beads in dei...
Manipulation of colloidal objects with light is important in diverse fields. While performance of tr...
Optical tweezers are a very well-established technique that have developed into a standard tool for ...
This dissertation presents and explores a technique to confine and manipulate single and multiple na...
This dissertation presents and explores a technique to confine and manipulate single and multiple na...