We theoretically analyze optical forces on aggregates of metal nanoparticles in a focused Gaussian beam by extending the generalized Mie theory, which includes higher order multipoles and retardation effects. For two interacting metallic particles, an attractive gradient force, mainly caused by multipole plasmon excitation, exists at short interparticle distances, while induced dipolar fields dominate for separations of the order of the particle radius R or larger. The long-range force component can be either attractive or repulsive depending on the phase of the induced dipoles, as determined by the illumination wavelength and the collective dipolar plasmon resonance. In particular, the repulsive force that occurs for illumination near the ...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We numerically show that both repulsive and attractive (bipolar) optical forces can be exerted on a ...
We theoretically analyze optical forces on aggregates of metal nanoparticles in a focused Gaussian b...
We theoretically analyze optical forces on aggregates of metal nanoparticles in a focused Gaussian b...
Garcia de Abajo FJ, Brixner T, Pfeiffer W. Nanoscale force manipulation in the vicinity of a metal n...
With the rapid development of nanoscience and nanotechnology, surface plasmonics based on metal nan...
With the rapid development of nanoscience and nanotechnology, surface plasmonics based on metal nan...
Optical trapping of metal nanoparticles investigates phenomena at the interface of plasmonics and op...
We present calculations of the optical forces between two metal nanospheres forming a hybridized pla...
We present calculations of the optical forces between two metal nanospheres forming a hybridized pla...
The optical forces acting on nanoparticles in V-shaped plasmonic resonators with a high local-field ...
We have used the Maxwell stress tensor method to calculate the optical forces acting upon a dielectr...
Light-induced forces between metal nanoparticles change the geometry of the aggregates and affect th...
Plasmonic antennas improve the stiffness and resolution of optical tweezers by producing a strong ne...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We numerically show that both repulsive and attractive (bipolar) optical forces can be exerted on a ...
We theoretically analyze optical forces on aggregates of metal nanoparticles in a focused Gaussian b...
We theoretically analyze optical forces on aggregates of metal nanoparticles in a focused Gaussian b...
Garcia de Abajo FJ, Brixner T, Pfeiffer W. Nanoscale force manipulation in the vicinity of a metal n...
With the rapid development of nanoscience and nanotechnology, surface plasmonics based on metal nan...
With the rapid development of nanoscience and nanotechnology, surface plasmonics based on metal nan...
Optical trapping of metal nanoparticles investigates phenomena at the interface of plasmonics and op...
We present calculations of the optical forces between two metal nanospheres forming a hybridized pla...
We present calculations of the optical forces between two metal nanospheres forming a hybridized pla...
The optical forces acting on nanoparticles in V-shaped plasmonic resonators with a high local-field ...
We have used the Maxwell stress tensor method to calculate the optical forces acting upon a dielectr...
Light-induced forces between metal nanoparticles change the geometry of the aggregates and affect th...
Plasmonic antennas improve the stiffness and resolution of optical tweezers by producing a strong ne...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We numerically show that both repulsive and attractive (bipolar) optical forces can be exerted on a ...