Energy Savings of Multi-Channel Neurostimulators with Non-Rectangular Current-Mode Stimuli Using Multiple Supply Rails

Conference Paper (2022)
Author(s)

Konstantina Kolovou-Kouri (TU Delft - Electrical Engineering, Mathematics and Computer Science, Fraunhofer Institute for Reliability and Microintegration IZM)

Amin Rashidi (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Francesc Varkevisser (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Wouter A. Serdijn (TU Delft - Electrical Engineering, Mathematics and Computer Science, Erasmus MC)

Vasiliki Giagka (TU Delft - Electrical Engineering, Mathematics and Computer Science, Fraunhofer Institute for Reliability and Microintegration IZM)

Research Group
Bio-Electronics
DOI related publication
https://doi.org/10.1109/EMBC48229.2022.9871145 Final published version
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Publication Year
2022
Language
English
Research Group
Bio-Electronics
Pages (from-to)
3443-3446
ISBN (print)
978-1-7281-2783-5
ISBN (electronic)
978-1-7281-2782-8
Event
2022 44th Annual International Conference of the IEEE Engineering in Medicine & Biology Society (EMBC) (2022-07-11 - 2022-07-15), Glasgow, United Kingdom
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Abstract

In neuromodulation applications, conventional current mode stimulation is often preferred over its voltage mode equivalent due to its good control of the injected charge. However, it comes at the cost of less energy-efficient output stages. To increase energy efficiency, recent studies have explored non-rectangular stimuli. The current work highlights the importance of an adaptive supply for an output stage with programmable non-rectangular stimuli and accordingly proposes a system-level architecture for multi-channel stimulators. In the proposed architecture, a multi-output DC/DC Converter (DDC) allows each channel to choose among the available supply levels (i.e., DDC outputs) independently and based on its instant voltage/current requirement. A system-level analysis is carried out in Matlab to calculate the possible energy savings of this solution, compared to the conventional approach with a fixed supply. The energy savings have been simulated for a variety of supply levels and waveform amplitudes, suggesting energy savings of up to 83% when employing 6 DDC outputs and the lowest current amplitude explored (250A), and as high as 26% for a full-scale amplitude (4 mA).

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