Optical trapping and manipulation of micrometre-sized particles was first reported in 1970. Since then, it has been successfully implemented in two size ranges: the subnanometre scale, where light-matter mechanical coupling enables cooling of atoms, ions and molecules, and the micrometre scale, where the momentum transfer resulting from light scattering allows manipulation of microscopic objects such as cells. But it has been difficult to apply these techniques to the intermediate-nanoscale-range that includes structures such as quantum dots, nanowires, nanotubes, graphene and two-dimensional crystals, all of crucial importance for nanomaterials-based applications. Recently, however, several new approaches have been developed and demonstrat...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
We study optical trapping of nanotubes and graphene. We extract the distribution of both centre-of-m...
We study optical trapping of nanotubes and graphene. We extract the distribution of both centre-of-m...
Cataloged from PDF version of article.Optical trapping and manipulation of micrometre-sized particle...
Optical trapping and manipulation of micrometre-sized particles was first reported in 1970. Since th...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Optical trapping is the craft of manipulating obje...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
We extract the distribution of both center-of-mass and angular fluctuations from three-dimensional t...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
Abstract. Optical trapping is an established field for movement of micron-size objects and cells. Ho...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
We study optical trapping of nanotubes and graphene. We extract the distribution of both centre-of-m...
We study optical trapping of nanotubes and graphene. We extract the distribution of both centre-of-m...
Cataloged from PDF version of article.Optical trapping and manipulation of micrometre-sized particle...
Optical trapping and manipulation of micrometre-sized particles was first reported in 1970. Since th...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
© 2018 WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim Optical trapping is the craft of manipulating obje...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
Since the invention of optical tweezers, optical manipulation has advanced significantly in scientif...
We extract the distribution of both center-of-mass and angular fluctuations from three-dimensional t...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
Abstract. Optical trapping is an established field for movement of micron-size objects and cells. Ho...
This feature article discusses the optical trapping and manipulation of plasmonic nanoparticles, an ...
The ability of metallic nanostructures to confine light at the sub-wavelength scale enables new pers...
We study optical trapping of nanotubes and graphene. We extract the distribution of both centre-of-m...
We study optical trapping of nanotubes and graphene. We extract the distribution of both centre-of-m...