Recent interest and initiatives in brain research have driven a worldwide effort towards developing implantable neural interface systems with high spatiotemporal resolution and spatial coverage extending to the whole brain. Electrocorticography (ECoG) promises a minimally invasive, chronically implantable neural interface with resolution and spatial coverage capabilities that, when appropriately scaled, meet the needs of recently proposed brain initiatives. Current ECoG technologies, however, typically rely on cm-sized electrodes and wired operation, severely limiting their resolution and long-term use.The work presented here has advanced micro-electrocorticography (uECoG) technologies for wireless high-density cortical neural interfaces in...
Since the early 1950s, electrocorticography (ECoG), the measurement of electrical potentials on the ...
Implantable neuronal interfaces to the brain are an important keystone for future medical applicatio...
Implantable neuronal interfaces to the brain are an important keystone for future medical applicatio...
Recent demand and initiatives in brain research have driven significant interest toward developing c...
Advances in neural engineering are enabling targeted neural recording and stimulation towards high-r...
Clinically viable and minimally invasive neural interfaces stand to revolutionize disease care for p...
Current implantable brain devices for clinical and research applications require that each electrode...
Brain machine interfaces have the potential to revolutionize our understanding of the brain, restore...
Despite tremendous progress over the years, current brain-machine interface (BMI) systems are relati...
Implantable neural interfaces are microelectronic systems, which have the potential to enable a wide...
Neural prostheses such as deep brain stimulation and cochlear implants are showing great promise for...
Neural interfaces promise to radically change medicine. Currently, amputees and persons suffering fr...
Neural prostheses such as deep brain stimulation and cochlear implants are showing great promise for...
High-density electrocortical (ECoG) microelectrode arrays are promising signal-acquisition platform...
Emerging applications in brain-machine interface systems require high-resolution, chronic multisite ...
Since the early 1950s, electrocorticography (ECoG), the measurement of electrical potentials on the ...
Implantable neuronal interfaces to the brain are an important keystone for future medical applicatio...
Implantable neuronal interfaces to the brain are an important keystone for future medical applicatio...
Recent demand and initiatives in brain research have driven significant interest toward developing c...
Advances in neural engineering are enabling targeted neural recording and stimulation towards high-r...
Clinically viable and minimally invasive neural interfaces stand to revolutionize disease care for p...
Current implantable brain devices for clinical and research applications require that each electrode...
Brain machine interfaces have the potential to revolutionize our understanding of the brain, restore...
Despite tremendous progress over the years, current brain-machine interface (BMI) systems are relati...
Implantable neural interfaces are microelectronic systems, which have the potential to enable a wide...
Neural prostheses such as deep brain stimulation and cochlear implants are showing great promise for...
Neural interfaces promise to radically change medicine. Currently, amputees and persons suffering fr...
Neural prostheses such as deep brain stimulation and cochlear implants are showing great promise for...
High-density electrocortical (ECoG) microelectrode arrays are promising signal-acquisition platform...
Emerging applications in brain-machine interface systems require high-resolution, chronic multisite ...
Since the early 1950s, electrocorticography (ECoG), the measurement of electrical potentials on the ...
Implantable neuronal interfaces to the brain are an important keystone for future medical applicatio...
Implantable neuronal interfaces to the brain are an important keystone for future medical applicatio...