Title :
A Digitally Assisted, Signal Folding Neural Recording Amplifier
Author :
Yi Chen ; Basu, Anirban ; Lei Liu ; Xiaodan Zou ; Rajkumar, R. ; Dawe, Gavin Stewart ; Minkyu Je
Author_Institution :
IC Design Centre of Excellence, Nanyang Technol. Univ., Singapore, Singapore
Abstract :
A novel signal folding and reconstruction scheme for neural recording applications that exploits the 1/fn characteristics of neural signals is described in this paper. The amplified output is `folded´ into a predefined range of voltages by using comparison and reset circuits along with the core amplifier. After this output signal is digitized and transmitted, a reconstruction algorithm can be applied in the digital domain to recover the amplified signal from the folded waveform. This scheme enables the use of an analog-to-digital convertor with less number of bits for the same effective dynamic range. It also reduces the transmission data rate of the recording chip. Both of these features allow power and area savings at the system level. Other advantages of the proposed topology are increased reliability due to the removal of pseudo-resistors, lower harmonic distortion and low-voltage operation. An analysis of the reconstruction error introduced by this scheme is presented along with a behavioral model to provide a quick estimate of the post reconstruction dynamic range. Measurement results from two different core amplifier designs in 65 nm and 180 nm CMOS processes are presented to prove the generality of the proposed scheme in the neural recording applications. Operating from a 1 V power supply, the amplifier in 180 nm CMOS has a gain of 54.2 dB, bandwidth of 5.7 kHz, input referred noise of 3.8 μVrms and power dissipation of 2.52 μW leading to a NEF of 3.1 in spike band. It exhibits a dynamic range of 66 dB and maximum SNDR of 43 dB in LFP band. It also reduces system level power (by reducing the number of bits in the ADC by 2) as well as data rate to 80% of a conventional design. In vivo measurements validate the ability of this amplifier to simultaneously record spike and LFP signals.
Keywords :
CMOS integrated circuits; amplifiers; analogue-digital conversion; bioelectric potentials; biomedical electronics; medical signal detection; medical signal processing; neurophysiology; noise; signal reconstruction; 1/fn characteristics; CMOS processes; LFP signals; analog-to-digital convertor; bandwidth 5.7 kHz; behavioral model; digitally assisted signal folding neural recording amplifier; gain; gain 54.2 dB; input referred noise; local field potential; low harmonic distortion; low-voltage operation; power 2.52 muW; power dissipation; reconstruction error; signal reconstruction; size 180 nm; size 65 nm; spike recording; system level power; voltage 1 V; Bandwidth; Dynamic range; Gain; Noise; Reconstruction algorithms; Topology; Wireless communication; Digitally assisted analog; neural amplifier; neural recording; non-Nyquist reconstruction; signal folding;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2013.2288680