Integrated neural implants interface with the brain using biocompatible electrodes to provide high yield cell recordings, large channel counts and access to spike data and/or field potentials with high signal-to-noise ratio. By increasing the number of recording electrodes, spatially broad analysis can be performed that can provide insights on how and why neuronal ensembles synchronize their activity. However, the maximum number of channels is constrained by noise, area, bandwidth, power, thermal dissipation and the scalability and expandability of the recording system. In this chapter, we characterize the noise fluctuations on a circuit-architecture level for efficient hardware implementation of programmable gain analog to digital converte...
Brain-Machine Interfaces (BMIs) have been developed in the past few decades to establish a bridge be...
A key challenge in designing analog-to-digital converters for cortically implanted prosthesis is to ...
In this paper, we present a neural recording interface circuit for biomedical implantable devices, w...
Integrated neural implants interface with the brain using biocompatible electrodes to provide high y...
Neural-to-electronic interfaces are essential methods for neuroscience and neural prosthetics to mon...
Chronic recording of neural signals is indispensable in designing efficient brain machine interfaces...
The recent progress in both neurobiology and microelectronics suggests the creation of new, powerful...
Abstract—We report the design of an ultra-low-power 32-channel neural-recording integrated circuit (...
This thesis presents the design, testing, implantation and limitations of neural recording arrays wi...
This paper presents a fully implantable 100-channel neural interface IC for neural activity monitori...
Brain neuroprostheses for neuromodulation are being designed to monitor the neural activity of the b...
This paper presents a low-area low-power Switched-Capacitor (SC)-based Programmable-Gain Analog-to-D...
Neural recording systems that interface with implanted microelectrodes are used extensively in exper...
Modern microtechnology is enabling the channel count of neural recording integrated circuits to scal...
Development of brain-machine interfaces and treatment of neurological diseases can benefit from anal...
Brain-Machine Interfaces (BMIs) have been developed in the past few decades to establish a bridge be...
A key challenge in designing analog-to-digital converters for cortically implanted prosthesis is to ...
In this paper, we present a neural recording interface circuit for biomedical implantable devices, w...
Integrated neural implants interface with the brain using biocompatible electrodes to provide high y...
Neural-to-electronic interfaces are essential methods for neuroscience and neural prosthetics to mon...
Chronic recording of neural signals is indispensable in designing efficient brain machine interfaces...
The recent progress in both neurobiology and microelectronics suggests the creation of new, powerful...
Abstract—We report the design of an ultra-low-power 32-channel neural-recording integrated circuit (...
This thesis presents the design, testing, implantation and limitations of neural recording arrays wi...
This paper presents a fully implantable 100-channel neural interface IC for neural activity monitori...
Brain neuroprostheses for neuromodulation are being designed to monitor the neural activity of the b...
This paper presents a low-area low-power Switched-Capacitor (SC)-based Programmable-Gain Analog-to-D...
Neural recording systems that interface with implanted microelectrodes are used extensively in exper...
Modern microtechnology is enabling the channel count of neural recording integrated circuits to scal...
Development of brain-machine interfaces and treatment of neurological diseases can benefit from anal...
Brain-Machine Interfaces (BMIs) have been developed in the past few decades to establish a bridge be...
A key challenge in designing analog-to-digital converters for cortically implanted prosthesis is to ...
In this paper, we present a neural recording interface circuit for biomedical implantable devices, w...