To understand the neural code, that the retina uses to communicate the visual scene to the brain, large-area microelectrode arrays are needed to record retinal signals simultaneously from many recording sites. This will give a valuable insight into how large biological neural networks (such as the brain) process information, and may also be important in the development of a retinal prosthesis as a potential cure for some forms of blindness. We have used the transparent conductor indium tin oxide to fabricated electrode arrays with approximately 500 electrodes spaced at 60 μm. The fabrication procedures include photolithography, electron-beam lithography, chemical etching and reactive-ion etching. These arrays have been tested electrically u...
We have described the development of a flexible microelectrode array with potential applications in ...
For several decades, microelectrode array (MEA) has been a powerful tool for in vitro neural electro...
Position-sensitive biological neural networks, such as the brain and the retina, require positionsen...
To understand the neural code, that the retina uses to communicate the visual scene to the brain, la...
To understand the neural code, that the retina uses to communicate the visual scene to the brain, la...
To understand how biological neural networks, such as the retina, process information, transparent m...
The production of high-density, large-area microelectrode arrays for neurophysiology studies require...
Understanding how the retina encodes the visual scene is a problem, which requires large area, high-...
Understanding how the retina encodes the visual scene is a problem, which requires large area, high-...
Imaging the electrical output activity of biological cells is important to gain an understanding of ...
Neurophysiologists traditionally studied the behaviour of individual neurons by measuring their extr...
Recent developments in low-power electronics and semiconductor fabrication techniques have found man...
The electrophysiological observation of neurological cells has allowed much knowledge to be gathered...
Microelectrode array (MEA) is a tool used for recording bioelectric signals from electrically active...
[[abstract]]This research is to design micro multi-probe electrode array (MEA) for retinal neuron si...
We have described the development of a flexible microelectrode array with potential applications in ...
For several decades, microelectrode array (MEA) has been a powerful tool for in vitro neural electro...
Position-sensitive biological neural networks, such as the brain and the retina, require positionsen...
To understand the neural code, that the retina uses to communicate the visual scene to the brain, la...
To understand the neural code, that the retina uses to communicate the visual scene to the brain, la...
To understand how biological neural networks, such as the retina, process information, transparent m...
The production of high-density, large-area microelectrode arrays for neurophysiology studies require...
Understanding how the retina encodes the visual scene is a problem, which requires large area, high-...
Understanding how the retina encodes the visual scene is a problem, which requires large area, high-...
Imaging the electrical output activity of biological cells is important to gain an understanding of ...
Neurophysiologists traditionally studied the behaviour of individual neurons by measuring their extr...
Recent developments in low-power electronics and semiconductor fabrication techniques have found man...
The electrophysiological observation of neurological cells has allowed much knowledge to be gathered...
Microelectrode array (MEA) is a tool used for recording bioelectric signals from electrically active...
[[abstract]]This research is to design micro multi-probe electrode array (MEA) for retinal neuron si...
We have described the development of a flexible microelectrode array with potential applications in ...
For several decades, microelectrode array (MEA) has been a powerful tool for in vitro neural electro...
Position-sensitive biological neural networks, such as the brain and the retina, require positionsen...