A method and mathematical foundation are presented for generating multiple-beam optical tweezers capable of introducing complex trapping beam configurations that enable optical manipulation for a variety of colloidal structures. The method is based on the generalized phase contrast technique for generating high intensity beam patterns from an input phase modulation encoded on a spatial light modulator. The mathematical foundation describes issues concerning how the method provides high photon efficiency adequate for generating large array traps while maintaining dynamic features. Experimental results show multiple trapping of up to 25 particles using a 200 mW laser diode operating at 830 nm. Arbitrary array beam configurations are also show...
We explore the dynamic properties of multiple-beam optical traps to manipulate arrays of microstruct...
The use of diffractive optical elements (DOEs) for multiple trapping of dielectric micro-spheres imm...
This paper discusses progress in using spatial light modulators and interferometry to control the be...
We transform a TEM00 laser mode into multiple counterpropagating optical traps to achieve four-dimen...
The simultaneous positioning of multiple colloidal particles using optical tweezers is described her...
Using a laser beam that is focused down to a diffraction-limited spot, particles with a size ranging...
A method and apparatus for control of optical trap arrays and formation of particle arrays using lig...
This chapter reviews the basic physics and design of an optical tweezers system. It shows how the op...
With a tightly focused single laser beam, also called optical tweezers, particles of a few nanometer...
Although optical tweezers have been a valuable research tool since their invention in the 1980s, the...
We present an experimental method, based on the use of dynamic split-lens configurations, useful for...
This paper reports on cell and microparticle manipulation using optically induced dielectrophoresis....
Hexagonal arrays of micron sized silica beads have been trapped in three-dimensions within an optica...
In existing control techniques for optical tweezers, a target particle is directly trapped and manip...
We explore the dynamic properties of multiple-beam optical traps to manipulate arrays of microstruct...
The use of diffractive optical elements (DOEs) for multiple trapping of dielectric micro-spheres imm...
This paper discusses progress in using spatial light modulators and interferometry to control the be...
We transform a TEM00 laser mode into multiple counterpropagating optical traps to achieve four-dimen...
The simultaneous positioning of multiple colloidal particles using optical tweezers is described her...
Using a laser beam that is focused down to a diffraction-limited spot, particles with a size ranging...
A method and apparatus for control of optical trap arrays and formation of particle arrays using lig...
This chapter reviews the basic physics and design of an optical tweezers system. It shows how the op...
With a tightly focused single laser beam, also called optical tweezers, particles of a few nanometer...
Although optical tweezers have been a valuable research tool since their invention in the 1980s, the...
We present an experimental method, based on the use of dynamic split-lens configurations, useful for...
This paper reports on cell and microparticle manipulation using optically induced dielectrophoresis....
Hexagonal arrays of micron sized silica beads have been trapped in three-dimensions within an optica...
In existing control techniques for optical tweezers, a target particle is directly trapped and manip...
We explore the dynamic properties of multiple-beam optical traps to manipulate arrays of microstruct...
The use of diffractive optical elements (DOEs) for multiple trapping of dielectric micro-spheres imm...
This paper discusses progress in using spatial light modulators and interferometry to control the be...