组合电路中亚阈值减漏技术的短脉冲功率门控方法重新设计

G. Amuthavalli, R. Gunasundari
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引用次数: 4

摘要

低功耗是任何应用程序电路设计人员的最终目标,特别是,事件驱动性质的低占空比应用程序(如无线传感器网络(WSN))的寿命依赖于功率严格的电池供电设备的设计。在传感器节点的所有层次上,低占空比是节省不必要功耗的实践解决方案。然而,在电路休眠状态下,快速耗电的是亚阈值漏电。仅在电路级抑制晶体管的短通道效应就能准确地节省漏电,前人的研究工作提出并在组合电路中实现了修正功率门控(MPG)和短脉冲功率门控方法(SPOGA,以下简称SPOGA_old)两种技术。尽管该方法具有较好的亚阈值泄漏抑制效果,但其局限性在于加载效应、状态保持和泄漏估计方法。为了在低占空比应用的组合电路中提供有效的睡眠状态亚阈值泄漏减少,通过重新设计SPOGA_old(称为SPOGA技术)来解决这些限制。本文以Cadence GPDK090为例,对所提出的基于CMOS逆变器的SPOGA技术进行了说明。仿真结果表明,SPOGA技术的亚阈值泄漏降低率(SLRR)较高,证明了SPOGA技术在亚阈值泄漏降低方面的有效性。
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Revisited Design of Short-pulse Power Gated Approach of Subthreshold Leakage Reduction Technique in Combinational Circuits
Low power consumption is the ultimate goal of the circuit designers of any application and specifically, the life time of event-driven nature of low duty cycle applications like Wireless Sensor Networks (WSN) relies on the design of power-stringent battery-operated devices. At all the hierarchical level of the sensor nodes, low duty cycling is the practicing solution in saving the unwanted power consumption. However, the rapid power squanderer at the sleep state of the circuit is the subthreshold leakage. The exact saving of the leakage can be done by suppressing the short-channel effects of the transistors only at the circuit-level and the two techniques Modified Power Gating (MPG) and Short-pulse POwer Gated Approach (SPOGA, hereafter called as SPOGA_old) are proposed and implemented in the combinational circuits in the previous works of the research. In spite of good subthreshold leakage reduction, the limitations of the proposed techniques are loading effect, state-retention and leakage estimation method. In order to provide an efficient sleep state subthreshold leakage reduction in combinational circuits of low duty cycle application, the limitations are addressed with a revisited design of SPOGA_old, called as SPOGA technique. The illustration of the proposed SPOGA technique with CMOS inverter is done using Cadence GPDK090. From the simulation results, it is clearly seen that the Subthreshold Leakage Reduction Ratio (SLRR) is high and proved the efficacy of the SPOGA technique in subthreshold leakage reduction.
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