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Supply and threshold voltage scaling for low power CMOS

IEEE Journal of Solid-State Circuits · 1997 · Vol. 32(8) · pp. 1210–1216
R. GonzalezB.M. GordonMark Horowitz

Abstract

This paper investigates the effect of lowering the supply and threshold voltages on the energy efficiency of CMOS circuits. Using a first-order model of the energy and delay of a CMOS circuit, we show that lowering the supply and threshold voltage is generally advantageous, especially when the transistors are velocity saturated and the nodes have a high activity factor, In fact, for modern submicron technologies, this simple analysis suggests optimal energy efficiency at supply voltages under 0.5 V. Other process and circuit parameters have almost no effect on this optimal operating point. If there is some uncertainty in the value of the threshold or supply voltage, however, the power advantage of this very low voltage operation diminishes. Therefore, unless active feedback is used to control the uncertainty, in the future the supply and threshold voltage will not decrease drastically, but rather will continue to scale down to maintain constant electric fields.

Low-power high-performance VLSI designAdvancements in Semiconductor Devices and Circuit DesignSemiconductor materials and devicesCMOSVoltageThreshold voltageOverdrive voltageElectronic circuitElectrical engineeringTransistorPower (physics)Electronic engineeringEngineering
Citations
640
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10.76
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References
Alpha-power law MOSFET model and its applications to CMOS inverter delay and other formulas
IEEE Journal of Solid-State Circuits · 1990 · 1,656 citations
A 160-MHz, 32-b, 0.5-W CMOS RISC microprocessor
IEEE Journal of Solid-State Circuits · 1996 · 635 citations
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