DocumentCode :
3476910
Title :
Ultralow-Power and Robust Embedded Memory for Bioimplantable Microsystems
Author :
Hashemian, Maryam S. ; Bhunia, Swarup
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Case Western Reserve Univ., Cleveland, OH, USA
fYear :
2013
fDate :
5-10 Jan. 2013
Firstpage :
66
Lastpage :
71
Abstract :
Bioimplantable microsystems, such as pacemaker and cochlear implant, interface with internal body parts to monitor and/or control their activity. These systems typically record biological signals, analyze them in real time, and then transmit them to outside world or take appropriate corrective action. They require ultralow-power miniaturized electronics for long-term reliable operation using on-board battery. Embedded memory used to temporarily store the recorded data, forms an integral and important part of these systems. In this paper, we explore the design space and propose an optimal design of embedded memory for implantable applications. First, we compare a conventional super-threshold implementation of memory with a sub-threshold design with respect to energy efficiency. Next, we propose a super-threshold static random access memory (SRAM) design operating at a frequency much higher than the sampling frequency. We show that it can achieve very low energy dissipation by taking advantage of extensive power gating. Moreover, compared to a sub-threshold memory, it provides significantly better area and higher robustness of operation, both of which are important requirements for implantable systems. As a case study, we consider a neural control system that records and analyzes neural spikes. Simulation results for 45nm CMOS process using pre-recorded neural data from sea-slug (Aplysia californica) show that the proposed design can lead to significant energy reduction, without compromising the robustness and performance, compared to its sub-threshold counterparts.
Keywords :
CMOS integrated circuits; SRAM chips; embedded systems; low-power electronics; prosthetics; CMOS process; SRAM design; bioimplantable microsystems; cochlear implant; energy efficiency; neural control system; neural spikes; on-board battery; pacemaker; power gating; prerecorded neural data; robust embedded memory; sampling frequency; size 45 nm; superthreshold static random access memory; ultralow-power embedded memory; ultralow-power miniaturized electronics; Arrays; Delay; Random access memory; Robustness; Switching circuits; Transistors; Vocabulary; Ultralow-power; bioimplantable; memory; neural interface; robust design; static random access memory; subthreshold;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
VLSI Design and 2013 12th International Conference on Embedded Systems (VLSID), 2013 26th International Conference on
Conference_Location :
Pune
ISSN :
1063-9667
Print_ISBN :
978-1-4673-4639-9
Type :
conf
DOI :
10.1109/VLSID.2013.164
Filename :
6472615
Link To Document :
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