We present a novel device for acoustically manipulating or sonotweezing micron-scale elements. Such techniques, that allow the micro-manipulation of cells, particles or droplets by non-invasive means, are desired to facilitate biophysical or biological applications such as microarrays and tissue engineering. Non-invasive techniques exploiting the acoustic radiation force have been demonstrated for trapping, separating and moving particles. Most results to date describe acoustic trapping using geometrically fixed standing wave patterns. However, the concerted action of multiple transducers can be used to generate electronically controlled standing wave patterns. This paper investigates 2-D particle micro-manipulation in a closed system using...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
AbstractThe use of primary acoustic radiation forces has been shown to be a valid technique for the ...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...
The ability of surface acoustic waves to trap and manipulate micrometer-scale particles and biologic...
Both optical tweezers and acoustic tweezers have been demonstrated for trapping small particles in d...
Both optical tweezers and acoustic tweezers have been demonstrated for trapping small particles in d...
We present a novel sensor device that acoustically patterns and discriminates micron-scale particles...
We present a novel sensor device that acoustically patterns and discriminates micron-scale particles...
International audienceThe contactless collective or selective manipulation of microscopic objects is...
An emerging demand for the precise manipulation of cells and particles for applications in cell biol...
International audienceThis paper presents a microfluidic device that implements standing surface aco...
Surface acoustic waves offer a versatile and biocompatible method of manipulating the location of su...
The concept of a single-beam acoustical tweezer device which can simultaneously trap microparticles ...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
AbstractThe use of primary acoustic radiation forces has been shown to be a valid technique for the ...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...
The ability of surface acoustic waves to trap and manipulate micrometer-scale particles and biologic...
Both optical tweezers and acoustic tweezers have been demonstrated for trapping small particles in d...
Both optical tweezers and acoustic tweezers have been demonstrated for trapping small particles in d...
We present a novel sensor device that acoustically patterns and discriminates micron-scale particles...
We present a novel sensor device that acoustically patterns and discriminates micron-scale particles...
International audienceThe contactless collective or selective manipulation of microscopic objects is...
An emerging demand for the precise manipulation of cells and particles for applications in cell biol...
International audienceThis paper presents a microfluidic device that implements standing surface aco...
Surface acoustic waves offer a versatile and biocompatible method of manipulating the location of su...
The concept of a single-beam acoustical tweezer device which can simultaneously trap microparticles ...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
An ultrasonic device for micro-patterning and precision manipulation of micrometre-scale particles i...
AbstractThe use of primary acoustic radiation forces has been shown to be a valid technique for the ...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...