This paper presents current research on a miniaturized neuroprosthesis suitable for implantation into the brain. The prosthesis is a heterogeneous integration of a 100-element microelectromechanical system (MEMS) electrode array, front-end complementary metal-oxide-semiconductor (CMOS) integrated circuit for neural signal preamplification, filtering, multiplexing and analog-to-digital conversion, and a second CMOS integrated circuit for wireless transmission of neural data and conditioning of wireless power. The prosthesis is intended for applications where neural signals are processed and decoded to permit the control of artificial or paralyzed limbs. This research, if successful, will allow implantation of the electronics into the brain, ...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
<p>The electrical interface to neural medical devices is researched from three perspectives, namely,...
Brain–machine interfaces have great potential for the development of neuroprosthetic applications to...
This paper presents current research on a miniaturized neuroprosthesis suitable for implantation int...
Paralysis has impacted the lives of millions of people, limiting not just their movement and quality...
We have recently witnessed an explosion in the number of neurons that can be recorded and/or stimula...
This paper presents work on ultra-low-power circuits for brain-machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain-machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain-machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain–machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain–machine interfaces with applications ...
Background: Implantable neuroprostheses consisting of a central electronic unit wired to electrodes ...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
<p>The electrical interface to neural medical devices is researched from three perspectives, namely,...
Brain–machine interfaces have great potential for the development of neuroprosthetic applications to...
This paper presents current research on a miniaturized neuroprosthesis suitable for implantation int...
Paralysis has impacted the lives of millions of people, limiting not just their movement and quality...
We have recently witnessed an explosion in the number of neurons that can be recorded and/or stimula...
This paper presents work on ultra-low-power circuits for brain-machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain-machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain-machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain–machine interfaces with applications ...
This paper presents work on ultra-low-power circuits for brain–machine interfaces with applications ...
Background: Implantable neuroprostheses consisting of a central electronic unit wired to electrodes ...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
Prior studies have demonstrated that the firing rate of cortical neurons can be volitionally modulat...
<p>The electrical interface to neural medical devices is researched from three perspectives, namely,...
Brain–machine interfaces have great potential for the development of neuroprosthetic applications to...