We present a novel sensor device that acoustically patterns and discriminates micron-scale particles. Such techniques, that allow the micro-manipulation and isolate cells, particles or droplets by non-invasive means, are desired to facilitate biophysical or biological applications such as microarrays and tissue engineering. Here, our approach utilizing a static acoustic field to pattern particles and a dynamic acoustic field that is capable of separating an arbitrary size range of particles. We first demonstrate the method for the separation of particles with different diameters between 6 and 45 μm. The shearless, label free and low damage characteristics make this method of manipulation particularly suited for biological applications. Adva...
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...
Acoustic trapping in disposable borosilicate capillaries utilize ultrasonic forces to capture/retain...
We present a novel sensor device that acoustically patterns and discriminates micron-scale particles...
We present a novel device for acoustically manipulating or sonotweezing micron-scale elements. Such ...
Advances in diagnostics, cell and stem cell technologies drive the development of application specif...
This paper presents a contactless, acoustic technique to manipulate and sort particles of varying si...
International audienceThis paper presents a microfluidic device that implements standing surface aco...
Separation of cells is a critical process for studying cell properties, disease diagnostics, and the...
International audienceManipulating micro and nano-biological particles like extracellular vehicles (...
International audienceManipulating micro and nano-biological particles like extracellular vehicles (...
The sensing of cells within micro-fluidic components can be greatly enhanced by maximizing the conce...
textThe sorting and isolation of target cells and suspended particles from a medium is of great impo...
International audienceThe contactless collective or selective manipulation of microscopic objects is...
textThe sorting and isolation of target cells and suspended particles from a medium is of great impo...
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...
Acoustic trapping in disposable borosilicate capillaries utilize ultrasonic forces to capture/retain...
We present a novel sensor device that acoustically patterns and discriminates micron-scale particles...
We present a novel device for acoustically manipulating or sonotweezing micron-scale elements. Such ...
Advances in diagnostics, cell and stem cell technologies drive the development of application specif...
This paper presents a contactless, acoustic technique to manipulate and sort particles of varying si...
International audienceThis paper presents a microfluidic device that implements standing surface aco...
Separation of cells is a critical process for studying cell properties, disease diagnostics, and the...
International audienceManipulating micro and nano-biological particles like extracellular vehicles (...
International audienceManipulating micro and nano-biological particles like extracellular vehicles (...
The sensing of cells within micro-fluidic components can be greatly enhanced by maximizing the conce...
textThe sorting and isolation of target cells and suspended particles from a medium is of great impo...
International audienceThe contactless collective or selective manipulation of microscopic objects is...
textThe sorting and isolation of target cells and suspended particles from a medium is of great impo...
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...
Acoustic trapping in disposable borosilicate capillaries utilize ultrasonic forces to capture/retain...