An emerging demand for the precise manipulation of cells and particles for applications in cell biology and analytical chemistry has driven rapid development of ultrasonic manipulation technology. Compared to the other manipulation technologies, such as magnetic tweezing, dielectrophoresis and optical tweezing, ultrasonic manipulation has shown potential in a variety of applications, with its advantages of versatile, inexpensive and easy integration into microfluidic systems, maintenance of cell viability, and generation of sufficient forces to handle particles, cells and their agglomerates. This article briefly reviews current practice and reports our development of various ultrasonic standing wave manipulation devices, including simple de...
There has been considerable interest in the noninvasive manipulation of particles in dispersions dur...
Separating and sorting cells and micro-organisms from a heterogeneous mixture is a fundamental step ...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
An emerging demand for the precise manipulation of cells and particles for applications in cell biol...
An emerging demand for the precise manipulation of cells and particles for applications in cell biol...
Ultrasonic fields are able to exert forces on cells and other micron-scale particles, including micr...
Contact-free handling and control of particles using the optical, magnetic, acoustic, and electrical...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
The paper describes the use of ultrasonic standing waves as bulk acoustic wave actuators, exploiting...
Contact-free handling and control of particles using the optical, magnetic, acoustic, and electrical...
The use of ultrasonic standing waves for contactless manipulation of microparticles in microfluidic ...
Microfluidic chips have become a powerful tool in research where biological cells are processed and/...
This paper reports the development of a two-dimensional thick film lead zirconate titanate (PZT) ult...
Several cell-based biological applications in microfluidic systems require simultaneous high-through...
There has been considerable interest in the noninvasive manipulation of particles in dispersions dur...
Separating and sorting cells and micro-organisms from a heterogeneous mixture is a fundamental step ...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
An emerging demand for the precise manipulation of cells and particles for applications in cell biol...
An emerging demand for the precise manipulation of cells and particles for applications in cell biol...
Ultrasonic fields are able to exert forces on cells and other micron-scale particles, including micr...
Contact-free handling and control of particles using the optical, magnetic, acoustic, and electrical...
Ultrasonic fields can be used to trap and manipulate micron-scale particles and second-phase fluids,...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...
The paper describes the use of ultrasonic standing waves as bulk acoustic wave actuators, exploiting...
Contact-free handling and control of particles using the optical, magnetic, acoustic, and electrical...
The use of ultrasonic standing waves for contactless manipulation of microparticles in microfluidic ...
Microfluidic chips have become a powerful tool in research where biological cells are processed and/...
This paper reports the development of a two-dimensional thick film lead zirconate titanate (PZT) ult...
Several cell-based biological applications in microfluidic systems require simultaneous high-through...
There has been considerable interest in the noninvasive manipulation of particles in dispersions dur...
Separating and sorting cells and micro-organisms from a heterogeneous mixture is a fundamental step ...
Ultrasonic standing wave fields are able to trap and manipulate biological cells and other micron sc...