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Scavenging thermal-noise energy for implementing long-term self-powered CMOS timers

机译:消除热噪声能量,以实现长期的自供电CMOS定时器

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One of the major challenges in remotely powered sensors is that events being monitored can not be time-stamped due to the unavailability of a continuously active timer or system clock. Implementing such a timer would require access to a perennial source of energy, which for a structural health monitoring (SHM) application, could easily span several years. In this paper, we present a novel approach to implement self-powered timers that only requires presence of ambient thermal energy. The operational principle of the timer is based on the physics of trap-assisted electron transportation in floating-gate capacitors which yields leakage currents down to 10−21A. Using a differential architecture the proposed timer compensates for the effects of temperature variations during the timer read-out. In this paper we validate the proof-of-concept using measurement results obtained from different timer topologies which have been prototyped in a 0.5μm CMOS process.
机译:远程供电传感器的主要挑战之一是,由于无法使用连续活动的计时器或系统时钟,因此无法对正在监视的事件进行时间戳记。实现这样的计时器将需要获得常年使用的能源,对于结构健康监测(SHM)应用程序,该能源可能很容易跨越数年。在本文中,我们提出了一种新颖的方法来实现自供电计时器,该计时器只需要存在环境热能即可。计时器的工作原理是基于浮栅电容器中陷阱辅助电子传输的物理原理,它会产生低至10 -21 A的泄漏电流。所提出的计时器使用差分架构来补偿计时器读数期间温度变化的影响。在本文中,我们使用从以0.5μmCMOS工艺原型化的不同计时器拓扑结构获得的测量结果来验证概念验证。

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