Using real-time re-programmable signal processing we connect acousto-optic steering and back-focal-plane interferometric position detection in optical tweezers to create a fast feedback controlled instrument. When trapping 3𝜇m latex beads in water we find that proportional-gain position-clamping increases the effective lateral trap stiffness ∼13-fold. A theoretical power spectrum for bead fluctuations during position-clamped trapping is derived and agrees with the experimental data. The loop delay, ∼19𝜇s in our experiment, limits the maximum achievable effective trap stiffness
We combined a single-beam gradient optical trap with a high-resolution photodiode position detector ...
Acousto-optic deflectors (AODs) allow the creation of multiple optical traps by time-sharing, that i...
Accurate calibrations of stiffness and position are crucial to the quantitative measurement with opt...
Using real-time re-programmable signal processing we connect acousto-optic steering and back-focal-p...
Optically trapped microshperes can be manipulated by steering the trap beam, while the object positi...
We increase the effective stiffness of optical tweezers by position clamping a polystyrene bead with...
Position clamping in optical tweezers allows us to use less laser power at a cer-tain trapping stiff...
We present a holographic optical tweezers system capable of position clamping multiple particles. Mo...
Phase optimization offers promising capabilities in optical tweezers, allowing huge increases in the...
Single molecule force clamp experiments are widely used to investigate how enzymes, molecular motors...
Optical tweezers can trap micron-sized objects such as cells, bacteria, and microspheres, and has be...
* The first two authors contributed equally to this work. Abstract-Optical tweezers are an importan...
The ability to create and manipulate spatio-temporal potentials is essential in the diverse fields o...
In optical trapping systems the trap stiffness, or spring constant, deteriorates dramatically with t...
Displacements of optically trapped particles are often recorded using back-focal-plane interferometr...
We combined a single-beam gradient optical trap with a high-resolution photodiode position detector ...
Acousto-optic deflectors (AODs) allow the creation of multiple optical traps by time-sharing, that i...
Accurate calibrations of stiffness and position are crucial to the quantitative measurement with opt...
Using real-time re-programmable signal processing we connect acousto-optic steering and back-focal-p...
Optically trapped microshperes can be manipulated by steering the trap beam, while the object positi...
We increase the effective stiffness of optical tweezers by position clamping a polystyrene bead with...
Position clamping in optical tweezers allows us to use less laser power at a cer-tain trapping stiff...
We present a holographic optical tweezers system capable of position clamping multiple particles. Mo...
Phase optimization offers promising capabilities in optical tweezers, allowing huge increases in the...
Single molecule force clamp experiments are widely used to investigate how enzymes, molecular motors...
Optical tweezers can trap micron-sized objects such as cells, bacteria, and microspheres, and has be...
* The first two authors contributed equally to this work. Abstract-Optical tweezers are an importan...
The ability to create and manipulate spatio-temporal potentials is essential in the diverse fields o...
In optical trapping systems the trap stiffness, or spring constant, deteriorates dramatically with t...
Displacements of optically trapped particles are often recorded using back-focal-plane interferometr...
We combined a single-beam gradient optical trap with a high-resolution photodiode position detector ...
Acousto-optic deflectors (AODs) allow the creation of multiple optical traps by time-sharing, that i...
Accurate calibrations of stiffness and position are crucial to the quantitative measurement with opt...