Microelectrode arrays are increasingly used in a wide variety of situations in the medical device sector. For example, one major challenge in microfluidic devices is the manipulation of fluids and droplets effectively at such scales. Due to the laminar flow regime (i.e., low Reynolds number) in microfluidic devices, the mixing of species is also difficult, and unless an active mixing strategy is employed, passive diffusion is the only mechanism that causes the fluid to mix. For many applications, diffusion is considered too slow, and thus many active pumping and mixing strategies have been employed using electrokinetic methods, which utilize a variety of simple and complex microelectrode array structures. Microelectrodes have also been impl...
Planar microelectrode arrays (MEAs) are devices that can be used in biomedical and basic in vitro re...
Traditional bioreactors for tissue engineering offer interesting perspectives to study cell growth, ...
With the rapid development of Micro-electro-mechanical Systems (MEMS) fabrication technologies, many...
Microelectrode arrays (MEA) and microfluidic systems are two of the most used technologies in Lab-on...
Since the advent of genetic analysis, electrode materials have played an irreplaceable role due to t...
Neumann E, Tönsing K, Siemens P. Perspectives for microelectrode arrays for biosensing and membrane ...
One of the most promising ways to improve clinical diagnostic tools is to use microfluidic Lab-on-a-...
Over the past few decades both micro/ nanofabrication and microfluidics technologies have been cruci...
We present a 3-D microfluidic device designed for localized drug delivery to cellular networks. The ...
One of the most exciting scientific advancements of the 21st century will undoubtedly be the further...
Devices that diagnose and characterize disease have the potential to greatly improve healthcare worl...
A revolution in cell culturing has been seen in the last two decades in which 3D culturing became th...
Electrochemical techniques are widely used in microfluidic and nanofluidic devices because they are ...
In recent years, several publications on microfluidic devices have focused on the process of electro...
Microfluidic techniques have the potential to greatly improve global healthcare through the developm...
Planar microelectrode arrays (MEAs) are devices that can be used in biomedical and basic in vitro re...
Traditional bioreactors for tissue engineering offer interesting perspectives to study cell growth, ...
With the rapid development of Micro-electro-mechanical Systems (MEMS) fabrication technologies, many...
Microelectrode arrays (MEA) and microfluidic systems are two of the most used technologies in Lab-on...
Since the advent of genetic analysis, electrode materials have played an irreplaceable role due to t...
Neumann E, Tönsing K, Siemens P. Perspectives for microelectrode arrays for biosensing and membrane ...
One of the most promising ways to improve clinical diagnostic tools is to use microfluidic Lab-on-a-...
Over the past few decades both micro/ nanofabrication and microfluidics technologies have been cruci...
We present a 3-D microfluidic device designed for localized drug delivery to cellular networks. The ...
One of the most exciting scientific advancements of the 21st century will undoubtedly be the further...
Devices that diagnose and characterize disease have the potential to greatly improve healthcare worl...
A revolution in cell culturing has been seen in the last two decades in which 3D culturing became th...
Electrochemical techniques are widely used in microfluidic and nanofluidic devices because they are ...
In recent years, several publications on microfluidic devices have focused on the process of electro...
Microfluidic techniques have the potential to greatly improve global healthcare through the developm...
Planar microelectrode arrays (MEAs) are devices that can be used in biomedical and basic in vitro re...
Traditional bioreactors for tissue engineering offer interesting perspectives to study cell growth, ...
With the rapid development of Micro-electro-mechanical Systems (MEMS) fabrication technologies, many...