The ability to drive microcentrifugation for efficient micromixing and particle concentration and separation on a microfluidic platform is critical for a wide range of lab-on-a-chip applications. In this work, we investigate the use of amplitude modulation to enhance the efficiency of the microcentrifugal recirculation flows in surface acoustic wave microfluidic systems, thus concomitantly reducing the power consumption in these devices for a given performance requirement-a crucial step in the development of miniaturized, integrated circuits for true portable functionality. In particular, we show that it is possible to obtain an increase of up to 60% in the acoustic streaming velocity in a microdroplet with kHz order modulation frequencies ...
We report the use of focused surface acoustic waves (SAWs) generated on 128° rotated Y -cut X -propa...
We investigate the aggregation of a dense suspension of particles (volume fraction, φ∼0.1 ) in a P...
Microfluidic systems promise solutions for high throughput and highly specific analysis for biology,...
The ability to drive efficient micromixing on a microfluidic platform is crucial for a wide range of...
A practical, commercially viable microfluidic device relies upon the miniaturization and integration...
Recent developments in the miniature chip-based microfludic nebulization platform utilizing surface ...
Fluid manipulation at the microscale presents significant challenges to the design of portable chip ...
We demonstrate that surface acoustic waves (SAWs), nanometer amplitude Rayleigh waves driven at mega...
Lab-on-a-chip microfluidic systems hold substantial promise for a wide range of diagnostic and thera...
Though uncommon in most microfluidic systems due to the dominance of viscous and capillary stresses,...
Surface acoustic wave (SAW) devices have emerged over the last two decades as a very promising platf...
We introduce an approach and describe the process of acoustically driven formation of droplets in a ...
Microfluidics and the lab-on-a-chip concept promises to open up new possibilities in miniaturised po...
In recent years, surface acoustic wave (SAW) that were generated by interlocking patterns of the int...
Microfluidics, the study of fluid flow at the sub-millimetre scale, is an enabling technology that o...
We report the use of focused surface acoustic waves (SAWs) generated on 128° rotated Y -cut X -propa...
We investigate the aggregation of a dense suspension of particles (volume fraction, φ∼0.1 ) in a P...
Microfluidic systems promise solutions for high throughput and highly specific analysis for biology,...
The ability to drive efficient micromixing on a microfluidic platform is crucial for a wide range of...
A practical, commercially viable microfluidic device relies upon the miniaturization and integration...
Recent developments in the miniature chip-based microfludic nebulization platform utilizing surface ...
Fluid manipulation at the microscale presents significant challenges to the design of portable chip ...
We demonstrate that surface acoustic waves (SAWs), nanometer amplitude Rayleigh waves driven at mega...
Lab-on-a-chip microfluidic systems hold substantial promise for a wide range of diagnostic and thera...
Though uncommon in most microfluidic systems due to the dominance of viscous and capillary stresses,...
Surface acoustic wave (SAW) devices have emerged over the last two decades as a very promising platf...
We introduce an approach and describe the process of acoustically driven formation of droplets in a ...
Microfluidics and the lab-on-a-chip concept promises to open up new possibilities in miniaturised po...
In recent years, surface acoustic wave (SAW) that were generated by interlocking patterns of the int...
Microfluidics, the study of fluid flow at the sub-millimetre scale, is an enabling technology that o...
We report the use of focused surface acoustic waves (SAWs) generated on 128° rotated Y -cut X -propa...
We investigate the aggregation of a dense suspension of particles (volume fraction, φ∼0.1 ) in a P...
Microfluidic systems promise solutions for high throughput and highly specific analysis for biology,...