A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. An ultrasonic standing wave with nodal planes whose positions are controllable by varying the relative phase of two applied sinusoidal signals is generated using a pair of acoustically matched piezoelectric transducers. The resulting acoustic radiation force is used to trap micron scale particles at a series of arbitrary positions (determined by the relative phase) and then move them in a controlled manner. This method is demonstrated experimentally and 5 μm polystyrene particles are trapped and moved in one dimension through 140 μm
AbstractThe separation of micron-sized particles from a steady flow of water through the use of ultr...
A method of microparticle separation from larger volumes of suspension is proposed. A piezoelectric ...
Controlling the relative positions and coalescence of independent cells or microparticles is of part...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
There has been considerable interest in the noninvasive manipulation of particles in dispersions dur...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
Ultrasonic standing wave manipulation has been proved to be a simple, robust technology to be integr...
We present a novel device for acoustically manipulating or sonotweezing micron-scale elements. Such ...
Ultrasonic standing wave manipulation has been proved to be a simple, robust technology to be integr...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...
<div><p>The essence of levitation technology is the countervailing of gravity. It is known that an u...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
AbstractThe separation of micron-sized particles from a steady flow of water through the use of ultr...
A method of microparticle separation from larger volumes of suspension is proposed. A piezoelectric ...
Controlling the relative positions and coalescence of independent cells or microparticles is of part...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
A method of manipulating microparticles in a liquid using ultrasound is proposed and demonstrated. A...
There has been considerable interest in the noninvasive manipulation of particles in dispersions dur...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
Ultrasonic standing wave manipulation has been proved to be a simple, robust technology to be integr...
We present a novel device for acoustically manipulating or sonotweezing micron-scale elements. Such ...
Ultrasonic standing wave manipulation has been proved to be a simple, robust technology to be integr...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...
<div><p>The essence of levitation technology is the countervailing of gravity. It is known that an u...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
AbstractThe separation of micron-sized particles from a steady flow of water through the use of ultr...
A method of microparticle separation from larger volumes of suspension is proposed. A piezoelectric ...
Controlling the relative positions and coalescence of independent cells or microparticles is of part...