A Micropower Low-Noise Neural Recording Front-End Circuit for Epileptic Seizure Detection

被引:118
作者
Qian, Chengliang [1 ]
Parramon, Jordi [2 ]
Sanchez-Sinencio, Edgar [1 ]
机构
[1] Texas A&M Univ, Dept Elect & Comp Engn, Analog & Mixed Signal Ctr, College Stn, TX 77843 USA
[2] Boston Sci Neuromodulat, Valencia, CA 91355 USA
关键词
Deep brain stimulation; epilepsy; fast ripples; low-power low-noise design; neural amplifier; noise efficiency factor; subthreshold circuit design; bandpass filter; elliptic filter; HIGH-FREQUENCY OSCILLATIONS; INSTRUMENTATION AMPLIFIER; TEMPORAL-LOBE; STIMULATION; GENERATION; SYSTEM; FILTER; EEG; HZ;
D O I
10.1109/JSSC.2011.2126370
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper describes a micropower low-noise neural front-end circuit capable of recording epileptic fast ripples (FR). The front-end circuit consisting of a preamplifier followed by a 6th-order bandpass filter is designed for signal sensing in a future epileptic deep brain stimulator. A current-splitting technique is combined with an output-branch current scaling technique in a folded-cascode amplifier structure to improve the noise and power tradeoff in the preamplifier. In measurements, the preamplifier exhibits 39.4 dB DC gain, 0.36 Hz to 1.3 kHz of -3 dB bandwidth, and 3.07 mu V-rms total input-referred noise while consuming 2.4 mu W from a 2.8 V power supply provided by an on-chip regulator circuit. A noise efficiency factor (NEF) of 3.09 is achieved with minimal power consumption and is one of the lowest published to date. The 6th-order follow-the-leader feedback elliptic bandpass filter passes FR signals and provides -110 dB/decade attenuation to out-of-band frequency components. In measurements, the entire front-end circuit achieves a mid-band gain of 38.5 dB, a bandwidth from 250 to 486 Hz, and a total input-referred noise of 2.48 mu V-rms while consuming 4.5 mu W from the 2.8 V power supply. The front-end NEF achieved is 7.6. To the authors' knowledge, the proposed epileptic seizure-detection system is the first to achieve the FR-recording functionality. The chip is fabricated in a standard 0.6 mu m CMOS process. Die size is 0.45 mm(2).
引用
收藏
页码:1392 / 1405
页数:14
相关论文
共 36 条
[1]  
[Anonymous], 1994, Proc. IEEE Int. Symp. Circuits Syst
[2]  
Assaad Rida S., 2007, ELECT LETT, V43
[3]   A 5 μW/Channel Spectral Analysis IC for Chronic Bidirectional Brain-Machine Interfaces [J].
Avestruz, Al-Thaddeus ;
Santa, Wesley ;
Carlson, Dave ;
Jensen, Randy ;
Stanslaski, Scott ;
Helfenstine, Alan ;
Denison, Tim .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2008, 43 (12) :3006-3024
[4]  
Bahmani F, 2004, ESSCIRC 2004: PROCEEDINGS OF THE 30TH EUROPEAN SOLID-STATE CIRCUITS CONFERENCE, P111
[5]   Local generation of fast ripples in epileptic brain [J].
Bragin, A ;
Mody, I ;
Wilson, CL ;
Engel, J .
JOURNAL OF NEUROSCIENCE, 2002, 22 (05) :2012-2021
[6]   A 2 μW 100 nV/rtHz chopper-stabilized instrumentation amplifier for chronic measurement of neural field potentials [J].
Denison, Tim ;
Consoer, Kelly ;
Santa, Wesley ;
Avestruz, Al-Thaddeus ;
Cooley, John ;
Kelly, Andy .
IEEE JOURNAL OF SOLID-STATE CIRCUITS, 2007, 42 (12) :2934-2945
[7]   AN ANALYTICAL MOS-TRANSISTOR MODEL VALID IN ALL REGIONS OF OPERATION AND DEDICATED TO LOW-VOLTAGE AND LOW-CURRENT APPLICATIONS [J].
ENZ, CC ;
KRUMMENACHER, F ;
VITTOZ, EA .
ANALOG INTEGRATED CIRCUITS AND SIGNAL PROCESSING, 1995, 8 (01) :83-114
[8]   High-frequency oscillations detected in epileptic networks using swarmed neural-network features [J].
Firpi, Hiram ;
Smart, Otis ;
Worrell, Greg ;
Marsh, Eric ;
Dlugos, Dennis ;
Litt, Brian .
ANNALS OF BIOMEDICAL ENGINEERING, 2007, 35 (09) :1573-1584
[9]   ACTIVE-FILTER DESIGN USING OPERATIONAL TRANSCONDUCTANCE AMPLIFIERS - A TUTORIAL [J].
GEIGER, RL ;
SANCHEZSINENCIO, E .
IEEE CIRCUITS & DEVICES, 1985, 1 (02) :20-32
[10]   A Low-Power Integrated Bioamplifier With Active Low-Frequency Suppression [J].
Gosselin, Benoit ;
Sawan, Mohamad ;
Chapman, C. Andrew .
IEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS, 2007, 1 (03) :184-192