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MIXIQ: re-thinking ultra-low power receiver design for next-generation on-body applications

Published: 25 October 2021 Publication History

Abstract

A long-standing challenge in radios for wearables is to design ultra-low power, yet high performance receivers with good sensitivity and spectral efficiency while being compatible with WiFi. The vanilla envelope detector used in standard UHF RFID is the most popular receivers on backscatter tags since they are passive but suffer from poor sensitivity and cannot decode complex modulations, which makes them a poor choice for directly decoding data from WiFi packets.
In this paper, we present the design of an easy-to-prototype ultra-low power WiFi receiver called MIXIQ that operates at μWs of power while providing improved sensitivity and decode-ability of complex high-rate signals. MIXIQ uses the signaling capabilities of the newest standard of WiFi, 802.11ax, to turn a standard WiFi packet into a helper + data signal. The same non-linear RF circuit used in a vanilla envelope detector, when driven by this twin signal, now behaves like a passive mixer i.e. it down-converts the RF carrier data to the sub-MHz range without adding any energy overhead. MIXIQ then uses an ultra low-power largely digital baseband pipeline to (i) significantly boost sensitivity using ultra low power components; (ii) enable the demodulation of complex signals for substantial boost in spectral efficiency. We show that MIXIQ improves upon the vanilla envelope detector by 25dB in sensitivity and 89× in bandwidth efficiency, while consuming 0.3mW for a PCB-based implementation and 40μW for CMOS simulation. We also demonstrate a Hearable system that leverages MIXIQ to improve VOIP reception range by 10× compared to a vanilla envelope detector.

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        cover image ACM Conferences
        MobiCom '21: Proceedings of the 27th Annual International Conference on Mobile Computing and Networking
        October 2021
        887 pages
        ISBN:9781450383424
        DOI:10.1145/3447993
        Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than the author(s) must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected].

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        Published: 25 October 2021

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        • (2024)Demo: Scalable and Sustainable Asset Tracking with NextG Cellular SignalsProceedings of the 30th Annual International Conference on Mobile Computing and Networking10.1145/3636534.3698837(1719-1721)Online publication date: 4-Dec-2024
        • (2024)Sisyphus: Redefining Low Power for LoRa ReceiverProceedings of the 30th Annual International Conference on Mobile Computing and Networking10.1145/3636534.3690686(1177-1191)Online publication date: 4-Dec-2024
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