SPACEMan: wireless SoC for concurrent potentiometry and amperometry
File(s)
Author(s)
Ma, Daryl
Chen, Yiyang
Ghoreishizadeh, Sara S
Georgiou, Pantelis
Type
Conference Paper
Abstract
Abstract:
This work describes the implementation of SPACEMan, a wireless electrochemical system with concurrent potentiometric and amperometric sensing that can be utilised for saliva, sweat or point of care diagnostics. This system is designed with the vision of simpler interfaces for biofluid analysis. With a complete system-on-chip including electrochemical sensing, power management and data transmission, conventional interfaces like wirebonds will no longer be required in post-processing steps. The proposed architecture consists of a sensor front-end with four electrodes for concurrent amperometric and potentiometric sensing. This front-end outputs square wave signals mixed together with varying frequencies dependent on the sensed input, with the output type switchable with a state machine. A power management system consisting of a low dropout regulator (LDO) band gap reference (BGR), and a rectifier bridge is utilised for supplying power from an inductive link at 433MHz. Sensor data is transmitted wirelessly to a base station using LSK (Load-Shift Keying). The sensor front-end consumes 18μW, which the power management system more than adequately provides. The core area of the electronics without the coil is a conservative size of 0.41mm 2 .
This work describes the implementation of SPACEMan, a wireless electrochemical system with concurrent potentiometric and amperometric sensing that can be utilised for saliva, sweat or point of care diagnostics. This system is designed with the vision of simpler interfaces for biofluid analysis. With a complete system-on-chip including electrochemical sensing, power management and data transmission, conventional interfaces like wirebonds will no longer be required in post-processing steps. The proposed architecture consists of a sensor front-end with four electrodes for concurrent amperometric and potentiometric sensing. This front-end outputs square wave signals mixed together with varying frequencies dependent on the sensed input, with the output type switchable with a state machine. A power management system consisting of a low dropout regulator (LDO) band gap reference (BGR), and a rectifier bridge is utilised for supplying power from an inductive link at 433MHz. Sensor data is transmitted wirelessly to a base station using LSK (Load-Shift Keying). The sensor front-end consumes 18μW, which the power management system more than adequately provides. The core area of the electronics without the coil is a conservative size of 0.41mm 2 .
Date Issued
2021-04-27
Date Acceptance
2021-04-01
Citation
2021 IEEE International Symposium on Circuits and Systems (ISCAS), 2021
ISSN
0271-4302
Publisher
IEEE
Journal / Book Title
2021 IEEE International Symposium on Circuits and Systems (ISCAS)
Copyright Statement
©2021 IEEE
Identifier
http://gateway.webofknowledge.com/gateway/Gateway.cgi?GWVersion=2&SrcApp=PARTNER_APP&SrcAuth=LinksAMR&KeyUT=WOS:000696765400257&DestLinkType=FullRecord&DestApp=ALL_WOS&UsrCustomerID=1ba7043ffcc86c417c072aa74d649202
Source
IEEE International Symposium on Circuits and Systems (IEEE ISCAS)
Subjects
Science & Technology
Technology
Engineering, Electrical & Electronic
Engineering
BIOSENSOR
Publication Status
Published
Start Date
2021-05-22
Finish Date
2021-05-28
Coverage Spatial
Daegu, SOUTH KOREA
Date Publish Online
2021-04-27