Optical forces on interacting plasmonic nanoparticles in a focused Gaussian beam
Journal article, 2008

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 plasmon resonance wavelength can be so large that it overcomes the optical trapping effect of the Gaussian beam.

LIGHT-SCATTERING

ENHANCED RAMAN-SCATTERING

ELECTROMAGNETIC-FIELD

RIGOROUS JUSTIFICATION

LOCALIZED APPROXIMATION

LORENZ-MIE THEORY

AXIS BEAMS

DIELECTRIC SPHERE

SHAPE COEFFICIENTS

METAL NANOPARTICLES

Author

Z. P. Li

Chinese Academy of Sciences

Mikael Käll

Chalmers, Applied Physics, Bionanophotonics

H. Xu

Lund University

Chinese Academy of Sciences

Physical Review B - Condensed Matter and Materials Physics

24699950 (ISSN) 24699969 (eISSN)

Vol. 77 8 6- 085412

Subject Categories

Other Engineering and Technologies

DOI

10.1103/PhysRevB.77.085412

More information

Latest update

10/2/2018