IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation
Electrical stimulation of the nervous system is commonly based on biphasic stimulation waveforms, which limits its relevance for some applications, such as selective stimulation. We propose in this paper a stimulator capable of delivering arbitrary waveforms to electrodes, and suitable for non-conve...
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doaj-36ae048965c34954a9153a5311ca99392021-08-06T15:21:23ZengMDPI AGElectronics2079-92922021-08-01101867186710.3390/electronics10151867IC-Based Neuro-Stimulation Environment for Arbitrary Waveform GenerationFlorian Kolbl0Yannick Bornat1Jonathan Castelli2Louis Regnacq3Gilles N’Kaoua4Sylvie Renaud5Noëlle Lewis6ETIS CNRS UMR 8051, CY Cergy Paris University, ENSEA, 95000 Cergy, FranceIMS, Université de Bordeaux, CNRS UMR 5218, Bordeaux INP, 33400 Talence, FranceIMS, Université de Bordeaux, CNRS UMR 5218, Bordeaux INP, 33400 Talence, FranceETIS CNRS UMR 8051, CY Cergy Paris University, ENSEA, 95000 Cergy, FranceIMS, Université de Bordeaux, CNRS UMR 5218, Bordeaux INP, 33400 Talence, FranceIMS, Université de Bordeaux, CNRS UMR 5218, Bordeaux INP, 33400 Talence, FranceIMS, Université de Bordeaux, CNRS UMR 5218, Bordeaux INP, 33400 Talence, FranceElectrical stimulation of the nervous system is commonly based on biphasic stimulation waveforms, which limits its relevance for some applications, such as selective stimulation. We propose in this paper a stimulator capable of delivering arbitrary waveforms to electrodes, and suitable for non-conventional stimulation strategies. Such a system enables in vivo stimulation protocols with optimized efficacy or energy efficiency. The designed system comprises a High Voltage CMOS ASIC generating a configurable stimulating current, driven by a digital circuitry implemented on a FPGA. After fabrication, the ASIC and system were characterized and tested; they successfully generated programmable waveforms with a frequential content up to 1.2 MHz and a voltage compliance between [−17.9; +18.3] V. The system is not optimum when compared to single application stimulators, but no embedded stimulator in the literature offers an equivalent bandwidth which allows the wide range of stimulation paradigms, including high-frequency blocking stimulation. We consider that this stimulator will help test unconventional stimulation waveforms and can be used to generate proof-of-concept data before designing implantable and application-dedicated implantable stimulators.https://www.mdpi.com/2079-9292/10/15/1867biomedical electronicselectrical stimulationneurostimulationbiomedical engineering |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Florian Kolbl Yannick Bornat Jonathan Castelli Louis Regnacq Gilles N’Kaoua Sylvie Renaud Noëlle Lewis |
spellingShingle |
Florian Kolbl Yannick Bornat Jonathan Castelli Louis Regnacq Gilles N’Kaoua Sylvie Renaud Noëlle Lewis IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation Electronics biomedical electronics electrical stimulation neurostimulation biomedical engineering |
author_facet |
Florian Kolbl Yannick Bornat Jonathan Castelli Louis Regnacq Gilles N’Kaoua Sylvie Renaud Noëlle Lewis |
author_sort |
Florian Kolbl |
title |
IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation |
title_short |
IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation |
title_full |
IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation |
title_fullStr |
IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation |
title_full_unstemmed |
IC-Based Neuro-Stimulation Environment for Arbitrary Waveform Generation |
title_sort |
ic-based neuro-stimulation environment for arbitrary waveform generation |
publisher |
MDPI AG |
series |
Electronics |
issn |
2079-9292 |
publishDate |
2021-08-01 |
description |
Electrical stimulation of the nervous system is commonly based on biphasic stimulation waveforms, which limits its relevance for some applications, such as selective stimulation. We propose in this paper a stimulator capable of delivering arbitrary waveforms to electrodes, and suitable for non-conventional stimulation strategies. Such a system enables in vivo stimulation protocols with optimized efficacy or energy efficiency. The designed system comprises a High Voltage CMOS ASIC generating a configurable stimulating current, driven by a digital circuitry implemented on a FPGA. After fabrication, the ASIC and system were characterized and tested; they successfully generated programmable waveforms with a frequential content up to 1.2 MHz and a voltage compliance between [−17.9; +18.3] V. The system is not optimum when compared to single application stimulators, but no embedded stimulator in the literature offers an equivalent bandwidth which allows the wide range of stimulation paradigms, including high-frequency blocking stimulation. We consider that this stimulator will help test unconventional stimulation waveforms and can be used to generate proof-of-concept data before designing implantable and application-dedicated implantable stimulators. |
topic |
biomedical electronics electrical stimulation neurostimulation biomedical engineering |
url |
https://www.mdpi.com/2079-9292/10/15/1867 |
work_keys_str_mv |
AT floriankolbl icbasedneurostimulationenvironmentforarbitrarywaveformgeneration AT yannickbornat icbasedneurostimulationenvironmentforarbitrarywaveformgeneration AT jonathancastelli icbasedneurostimulationenvironmentforarbitrarywaveformgeneration AT louisregnacq icbasedneurostimulationenvironmentforarbitrarywaveformgeneration AT gillesnkaoua icbasedneurostimulationenvironmentforarbitrarywaveformgeneration AT sylvierenaud icbasedneurostimulationenvironmentforarbitrarywaveformgeneration AT noellelewis icbasedneurostimulationenvironmentforarbitrarywaveformgeneration |
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1721218683312799744 |