Analog Realization of Fractional-Order Skin-Electrode Model for Tetrapolar Bio-Impedance Measurements

被引:19
作者
Alimisis, Vassilis [1 ]
Dimas, Christos [1 ]
Pappas, Georgios [1 ]
Sotiriadis, Paul P. [1 ]
机构
[1] Natl Tech Univ Athens, Dept Elect & Comp Engn, Athens 15780, Greece
关键词
tetrapolar measurement; bio-impedance; analog integrated circuits; fractional-order models; electrode; skin; IMPEDANCE TOMOGRAPHY SYSTEM; DIELECTRIC-PROPERTIES; BIOLOGICAL TISSUES; CONSTANT; DIFFERENTIATORS; IMPLEMENTATION; EMULATION; INTEGRATORS; ELEMENTS; BIPOLAR;
D O I
10.3390/technologies8040061
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
This work compares two design methodologies, emulating both AgCl electrode and skin tissue Cole models for testing and verification of electrical bio-impedance circuits and systems. The models are based on fractional-order elements, are implemented with active components, and capture bio-impedance behaviors up to 10 kHz. Contrary to passive-elements realizations, both architectures using analog filters coupled with adjustable transconductors offer tunability of the fractional capacitors' parameters. The main objective is to build a tunable active integrated circuitry block that is able to approximate the models' behavior and can be utilized as a Subject Under Test (SUT) and electrode equivalent in bio-impedance measurement applications. A tetrapolar impedance setup, typical in bio-impedance measurements, is used to demonstrate the performance and accuracy of the presented architectures via Spectre Monte-Carlo simulation. Circuit and post-layout simulations are carried out in 90-nm CMOS process, using the Cadence IC suite.
引用
收藏
页数:28
相关论文
共 62 条
[1]   Experimental comparison of integer/fractional-order electrical models of plant [J].
AboBakr, Ahmed ;
Said, Lobna A. ;
Madian, Ahmed H. ;
Elwakil, Ahmed S. ;
Radwan, Ahmed G. .
AEU-INTERNATIONAL JOURNAL OF ELECTRONICS AND COMMUNICATIONS, 2017, 80 :1-9
[2]  
Adler A., 2017, IEEE T BIOMED ENG, V64, P11
[3]  
Albulbul Anas, 2016, Bioengineering-Basel, V3, DOI 10.3390/bioengineering3030020
[4]  
Alimisis V., 2020, P 33 S INT CIRC SYST
[5]  
Alimisis V., 2019, P 42 INT C TEL SIGN
[6]   Implementation of Fractional-order Model of Nickel-Cadmium Cell using Current Feedback Operational Amplifiers [J].
Alimisis, Vassilis ;
Gourdouparis, Marios ;
Dimas, Christos ;
Sotiriadis, Paul P. .
24TH IEEE EUROPEAN CONFERENCE ON CIRCUIT THEORY AND DESIGN (ECCTD 2020), 2020,
[7]  
[Anonymous], 2017, 2017 EUR C CIRC
[8]  
Baxevanaki K., 2019, 2019 8TH INTERNATIONAL CONFERENCE ON MODERN CIRCUITS AND SYSTEMS TECHNOLOGIES (MOCAST), P1, DOI 10.1109/MOCAST.2019.8742026
[9]   Partial fraction expansion-based realizations of fractional-order differentiators and integrators using active filters [J].
Bertsias, Panagiotis ;
Psychalinos, Costas ;
Maundy, Brent J. ;
Elwakil, Ahmed S. ;
Radwan, Ahmed G. .
INTERNATIONAL JOURNAL OF CIRCUIT THEORY AND APPLICATIONS, 2019, 47 (04) :513-531
[10]   Current-mode capacitorless integrators and differentiators for implementing emulators of fractional-order elements [J].
Bertsias, Panagiotis ;
Psychalinos, Costas ;
Elwakil, Ahmed ;
Maundy, Brent .
AEU-INTERNATIONAL JOURNAL OF ELECTRONICS AND COMMUNICATIONS, 2017, 80 :94-103