Visible to the public A Low Power Current-Mode Flash ADC with Spin Hall Effect Based Multi-Threshold Comparator

TitleA Low Power Current-Mode Flash ADC with Spin Hall Effect Based Multi-Threshold Comparator
Publication TypeConference Paper
Year of Publication2016
AuthorsHe, Zhezhi, Fan, Deliang
Conference NameProceedings of the 2016 International Symposium on Low Power Electronics and Design
PublisherACM
Conference LocationNew York, NY, USA
ISBN Number978-1-4503-4185-1
Keywordsanalogical transfer, analogies, Flash ADC, Human Behavior, multi-threshold Comparator, pubcrawl, Spin Hall Effect
Abstract

Current-mode Analog-to-Digital Converter (ADC) has drawn many attentions due to its high operating speed, power and ground noise immunity, and etc. However, 2n - 1 comparators are required in traditional n-bit current-mode ADC design, leading to inevitable high power consumption and large chip area. In this work, we propose a low power and compact current mode Multi-Threshold Comparator (MTC) based on giant Spin Hall Effect (SHE). The two threshold currents of the proposed SHE-MTC are 200mA and 250mA with 1ns switching time, respectively. The proposed current-mode hybrid spin-CMOS flash ADC based on SHE-MTC reduces the number of comparators almost by half (2n-1), thus correspondingly reducing the required current mirror branches, total power consumption and chip area. Moreover, due to the non-volatility of SHE-MTC, the front-end analog circuits can be switched off when it is not required to further increase power efficiency. The device dynamics of SHE-MTC is simulated using a numerical device model based on Landau-Lifshitz-Gilbert (LLG) equation with Spin-Transfer Torque (STT) term and SHE term. The device-circuit co-simulation in SPICE (45nm CMOS technology) have shown that the average power dissipation of proposed ADC is 1.9mW, operating at 500MS/s with 1.2 V power supply. The INL and DNL are in the range of 0.23LSB and 0.32LSB, respectively.

URLhttp://doi.acm.org/10.1145/2934583.2934642
DOI10.1145/2934583.2934642
Citation Keyhe_low_2016