Title :
A CMOS Power-Efficient Low-Noise Current-Mode Front-End Amplifier for Neural Signal Recording
Author :
Chung-Yu Wu ; Wei-Ming Chen ; Liang-Ting Kuo
Author_Institution :
Dept. of Electron. Eng. & the Inst. of Electron., Nat. Chiao Tung Univ., Hsinchu, Taiwan
Abstract :
In this paper, a new current-mode front-end amplifier (CMFEA) for neural signal recording systems is proposed. In the proposed CMFEA, a current-mode preamplifier with an active feedback loop operated at very low frequency is designed as the first gain stage to bypass any dc offset current generated by the electrode-tissue interface and to achieve a low high-pass cutoff frequency below 0.5 Hz. No reset signal or ultra-large pseudo resistor is required. The current-mode preamplifier has low dc operation current to enhance low-noise performance and decrease power consumption. A programmable current gain stage is adopted to provide adjustable gain for adaptive signal scaling. A following current-mode filter is designed to adjust the low-pass cutoff frequency for different neural signals. The proposed CMFEA is designed and fabricated in 0.18-μm CMOS technology and the area of the core circuit is 0.076 mm2. The measured high-pass cutoff frequency is as low as 0.3 Hz and the low-pass cutoff frequency is adjustable from 1 kHz to 10 kHz. The measured maximum current gain is 55.9 dB. The measured input-referred current noise density is 153 fA /√Hz , and the power consumption is 13 μW at 1-V power supply. The fabricated CMFEA has been successfully applied to the animal test for recording the seizure ECoG of Long-Evan rats.
Keywords :
CMOS integrated circuits; DC amplifiers; adaptive filters; bioelectric potentials; biological tissues; biomedical electrodes; biomedical electronics; circuit feedback; current-mode circuits; low noise amplifiers; low-power electronics; neurophysiology; power consumption; power supply circuits; preamplifiers; programmable circuits; CMFEA; CMOS power-efficient low-noise amplifier; CMOS technology; ECoG seizure; Long-Evan rats; active feedback loop; adaptive signal scaling; core circuit area; current-mode filter; current-mode front-end amplifier; current-mode preamplifier; dc offset current generation; electrode-tissue interface; frequency 0.3 Hz; frequency 0.5 Hz; frequency 1 Hz to 10 Hz; gain 55.9 dB; input-referred current noise density; low dc operation current; low high-pass cutoff frequency; low-noise performance; neural signal recording system; power 13 muW; power consumption; power supply; programmable current gain stage; size 0.18 mum; ultra-large pseudo resistor; voltage 1 V; Current measurement; Cutoff frequency; Feedback loop; Gain; Impedance; Noise; Voltage measurement; Current-mode; front-end; low-noise low power design; neural recording; offset cancellation; Amplifiers, Electronic; Animals; Biomedical Engineering; Disease Models, Animal; Electric Power Supplies; Electronics, Medical; Epilepsy; Equipment Design; Feedback; Models, Neurological; Neural Networks (Computer); Neurons; Rats; Rats, Long-Evans; Signal Processing, Computer-Assisted;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2013.2256422