An acoustic resonator system has been investigated for the manipulation and entrapment of micron-sized particles in air. Careful consideration of the effect of the thickness and properties of the materials used in the design of the resonator was needed to ensure an optimised resonator. This was achieved using both analytical and finite-element modelling, as well as predictions of acoustic attenuation in air as a function of frequency over the 0.8 to 2.0 MHz frequency range. This resulted in a prediction of the likely operational frequency range to obtain particle manipulation. Experimental results are presented to demonstrate good capture of particles as small as 15 µm in diameter
Ultrasonic standing waves can be used to generate radiation forces which act on particles within a f...
A series of devices have been investigated which use acoustic radiation forces to concentrate micron...
Several approaches have been described for the manipulation of particles within an ultrasonic field....
AbstractAdvances in micro-electromechanical systems (MEMS) technology and biomedical research necess...
Advances in micro-electromechanical systems (MEMS) technology and biomedical research necessitate mi...
AbstractAdvances in micro-electromechanical systems (MEMS) technology and biomedical research necess...
The paper describes the use of ultrasonic standing waves as bulk acoustic wave actuators, exploiting...
This work presents the design and fabrication of Solidly Mounted Resonator (SMR) devices for the det...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
Ultrasonic standing waves can be used to generate radiation forces which act on particles within a f...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
Several approaches have been described for the manipulation of particles within an ultrasonic field....
The sensing of cells within micro-fluidic components can be greatly enhanced by maximizing the conce...
Ultrasonic standing waves can be used to generate radiation forces which act on particles within a f...
A series of devices have been investigated which use acoustic radiation forces to concentrate micron...
Several approaches have been described for the manipulation of particles within an ultrasonic field....
AbstractAdvances in micro-electromechanical systems (MEMS) technology and biomedical research necess...
Advances in micro-electromechanical systems (MEMS) technology and biomedical research necessitate mi...
AbstractAdvances in micro-electromechanical systems (MEMS) technology and biomedical research necess...
The paper describes the use of ultrasonic standing waves as bulk acoustic wave actuators, exploiting...
This work presents the design and fabrication of Solidly Mounted Resonator (SMR) devices for the det...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
Ultrasonic standing waves can be used to generate radiation forces which act on particles within a f...
An electronically controlled acoustic tweezer was used to demonstrate two acoustic manipulation phen...
Several approaches have been described for the manipulation of particles within an ultrasonic field....
The sensing of cells within micro-fluidic components can be greatly enhanced by maximizing the conce...
Ultrasonic standing waves can be used to generate radiation forces which act on particles within a f...
A series of devices have been investigated which use acoustic radiation forces to concentrate micron...
Several approaches have been described for the manipulation of particles within an ultrasonic field....