This paper presents the most complete framework to date for understanding the nonlinear optical trapping of highly absorbing nanoparticles within the dipole regime. Highly absorbing and plasmonic particles garner considerable interest due to their enhanced optical interactions, yet traditional linear theory fails to predict their trapping behavior, particularly in the longitudinal direction. We introduce a more comprehensive theory that incorporates four-wave mixing and two-photon absorption, addressing significant gaps in the current literature. Our research shows TPA to be crucial for longitudinal trapping stability. Furthermore, our findings propose a novel phenomenon of multiple split traps in both saturable absorption and reverse satur...
Optical manipulation of nanoparticles (NPs) with nanoscale precision has been a goal of several rese...
The special nonlinear optical response of noble metal nanoparticles (MNPs) when exposed to intense l...
In this article, we discuss the basic principles of optical manipulation of nanoparticles to micron ...
Thesis (Ph. D.)--University of Rochester. Institute of Optics, 2008.In this thesis I have investigat...
In this work, we present the experimental study of the nonlinear absorption of gold nanospheres and ...
In this thesis I have investigated two types of materials that have the potentiality, in different w...
We report a quantitative analysis of the forces acting on optically trapped single gold nanorods. In...
In this work, we present the experimental study of the nonlinear absorption of gold nanospheres and ...
The precise noninvasive optical manipulation of nanometer-sized particles by evanescent fields, inst...
Plasmonic nanoparticles, typically gold and silver colloids, can be trapped by a highly focused Gaus...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
Both nonlinear absorption and nonlinear refraction are effects that are potentially useful for a ple...
Aqueous suspensions containing pure gold nanoparticles and silica-gold core-shells are shown to exhi...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We theoretically investigate the opto-mechanical interactions between a dielectric nanoparticle and ...
Optical manipulation of nanoparticles (NPs) with nanoscale precision has been a goal of several rese...
The special nonlinear optical response of noble metal nanoparticles (MNPs) when exposed to intense l...
In this article, we discuss the basic principles of optical manipulation of nanoparticles to micron ...
Thesis (Ph. D.)--University of Rochester. Institute of Optics, 2008.In this thesis I have investigat...
In this work, we present the experimental study of the nonlinear absorption of gold nanospheres and ...
In this thesis I have investigated two types of materials that have the potentiality, in different w...
We report a quantitative analysis of the forces acting on optically trapped single gold nanorods. In...
In this work, we present the experimental study of the nonlinear absorption of gold nanospheres and ...
The precise noninvasive optical manipulation of nanometer-sized particles by evanescent fields, inst...
Plasmonic nanoparticles, typically gold and silver colloids, can be trapped by a highly focused Gaus...
Optical trapping is an established field for movement of micron-size objects and cells. However, tra...
Both nonlinear absorption and nonlinear refraction are effects that are potentially useful for a ple...
Aqueous suspensions containing pure gold nanoparticles and silica-gold core-shells are shown to exhi...
We show how light forces can be used to trap gold nanoaggregates of selected structure and optical p...
We theoretically investigate the opto-mechanical interactions between a dielectric nanoparticle and ...
Optical manipulation of nanoparticles (NPs) with nanoscale precision has been a goal of several rese...
The special nonlinear optical response of noble metal nanoparticles (MNPs) when exposed to intense l...
In this article, we discuss the basic principles of optical manipulation of nanoparticles to micron ...