Advances in microfabrication technology have enabled the production of devices containing arrays of thousands of closely spaced recording electrodes, which afford subcellular resolution of electrical signals in neurons and neuronal networks. Rationalizing the electrode size and configuration in such arrays demands consideration of application-specific requirements and inherent features of the electrodes. Tradeoffs among size, spatial density, sensitivity, noise, attenuation, and other factors are inevitable. Although recording extracellular signals from neurons with planar metal electrodes is fairly well established, the effects of the electrode characteristics on the quality and utility of recorded signals, especially for small, densely pa...
Microelectrode arrays (MEAs) are employed to study extracellular electrical activity in neuronal tis...
Microelectrode array recordings of neuronal activity present significant opportunities for studying ...
Multielectrode arrays (MEA) are used extensively for basic and applied electrophysiological research...
Advances in microfabrication technology have enabled the production of devices containing arrays of ...
Advances in microfabrication technology have enabled the production of devices containing arrays of ...
Extracellular electrode arrays can reveal the neuronal network correlates of behavior with single-ce...
In this paper, we present a study of the electrophysiological recording characteristics of metal ele...
The electrophysiological observation of neurological cells has allowed much knowledge to be gathered...
Extracellular microelectrodes have been widely used to measure brain activity, yet there are still b...
Device miniaturization technologies have led to significant advances in sensors for extracellular me...
Microelectrode arrays (MEA) record extracellular local field potentials of cells adhered to the elec...
The technology for producing microelectrode arrays (MEAs) has been developing since the 1970s and ex...
We describe fabrication methods and the characterisation and use of extracellalar microelectrode arr...
Neural coding consists of precise interactions between related neurons. New techniques are needed to...
State-of-the-art silicon probes for electrical recording from neurons have thousands of recording si...
Microelectrode arrays (MEAs) are employed to study extracellular electrical activity in neuronal tis...
Microelectrode array recordings of neuronal activity present significant opportunities for studying ...
Multielectrode arrays (MEA) are used extensively for basic and applied electrophysiological research...
Advances in microfabrication technology have enabled the production of devices containing arrays of ...
Advances in microfabrication technology have enabled the production of devices containing arrays of ...
Extracellular electrode arrays can reveal the neuronal network correlates of behavior with single-ce...
In this paper, we present a study of the electrophysiological recording characteristics of metal ele...
The electrophysiological observation of neurological cells has allowed much knowledge to be gathered...
Extracellular microelectrodes have been widely used to measure brain activity, yet there are still b...
Device miniaturization technologies have led to significant advances in sensors for extracellular me...
Microelectrode arrays (MEA) record extracellular local field potentials of cells adhered to the elec...
The technology for producing microelectrode arrays (MEAs) has been developing since the 1970s and ex...
We describe fabrication methods and the characterisation and use of extracellalar microelectrode arr...
Neural coding consists of precise interactions between related neurons. New techniques are needed to...
State-of-the-art silicon probes for electrical recording from neurons have thousands of recording si...
Microelectrode arrays (MEAs) are employed to study extracellular electrical activity in neuronal tis...
Microelectrode array recordings of neuronal activity present significant opportunities for studying ...
Multielectrode arrays (MEA) are used extensively for basic and applied electrophysiological research...