Neuro Interface Lab

Research, neurotechnology, interfaces, and open science.

Publications

This page lists the scientific contributions of the PI.

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2025

  1. Regnacq, L., Thota, A. K., Sanabria, A. O., McPherson, L., Renaud, S., Romain, O., Bornat, Y., Abbas, J. J., Jung, R., & Kölbl, F. (2025). Fascicle-selective kilohertz-frequency neural conduction block with longitudinal intrafascicular electrodes. Journal of Neural Engineering, 22(2), 026045.
  2. Polli, J. G., Kolbl, F., da Luz, M. G. E., & Lanusse, P. (2025). Delay suppression control of-oscillations: a proposal for dual-target adaptive deep brain stimulation on STN-GPe network model. Biological Cybernetics, 119(4), 21.
  3. Polli, J. G., Kolbl, F., Lanusse, P., & da Luz, M. G. E. (2025). Dynamical Diversity in Conductance-Based Neuron Response to kilohertz Electrical Stimulation. BioRxiv, 2025–2008.

2024

  1. Couppey, T., Regnacq, L., Giraud, R., Romain, O., Bornat, Y., & Kolbl, F. (2024). NRV: An open framework for in silico evaluation of peripheral nerve electrical stimulation strategies. PLoS Computational Biology, 20(7), e1011826.
  2. Regnacq, L., Sanabria, A. O., Thota, A. K., Abbas, J. J., Romain, O., Bornat, Y., Kölbl, F., & Jung, R. (2024). An impedance model to estimate the effective active area of neuro-electrode for quality control. 2024 46th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 1–4.
  3. Couppey, T., Regnacq, L., Giraud, R., Bornat, Y., Romain, O., & Kolbl, F. (2024). Academic Live Demo: NRV, An open-source in silico evaluation of neural electrical stimulation. 2024 IEEE Biomedical Circuits and Systems Conference (BioCAS), 1–1.
  4. Couppey, T., Romain, O., Français, O., & Kölbl, F. (2024). Frequency Analysis of Electrical Impedance Tomography for Peripheral Nerve Activity Recording. 2024 IEEE Biomedical Circuits and Systems Conference (BioCAS), 1–5.

2023

  1. Regnacq, L., Bornat, Y., Romain, O., & Kolbl, F. (2023). BIMMS: A versatile and portable system for biological tissue and electrode-tissue interface electrical characterization. HardwareX, 13, e00387.

2022

  1. Couppey, T., Kolbl, F., Quoy, M., Romain, O., Regnacq, L., & Giraud, R. (2022). Conduction block stimulation optimization by envelope modulation toward the reduction of onset response. FENS.

2021

  1. Kolbl, F., Bornat, Y., Castelli, J., Regnacq, L., N’kaoua, G., Renaud, S., & Lewis, N. (2021). IC-based neuro-stimulation environment for arbitrary waveform generation. Electronics, 10(15), 1867.
  2. Bailleul, A., Claudel, J., De Gannes, F. P., N’kaoua, G., Kolbl, F., Soulier, F., Lewis, N., Bernard, S., & Renaud, S. (2021). In vitro impedance spectroscopy: a MEA-based measurement bench for myoblasts cultures monitoring. 2021 XXXVI Conference on Design of Circuits and Integrated Systems (DCIS), 1–6.
  3. Regnacq, L., Giraud, R., Sanabria, A. O., Thota, A., Roversi, L., Rouhani, M., Mcpherson, L., Abbas, J. J., Jung, R., Romain, O., & others. (2021). Evaluation of stimulation waveforms for safe and efficient peripheral nervous system activation. 2021 Biomedical Circuits and Systems Conference (BioCAS 2021):" Restoring Vital Functions by Electronics–Achievements, Limitations, Opportunities, and Challenges".
  4. Regnacq, L., Giraud, R., N’Kaoua, G., Renaud, S., Jung, R., Abbas, J., Kolbl, F., Bornat, Y., Lewis, N., & Romain, O. (2021). A model/hardware framework for arbitrary waveform stimulation of peripheral nerve fibers. Neuro France 2021.

2020

  1. Tibar, H., Naudet, F., Kölbl, F., Ribot, B., Faggiani, E., N’kaoua, G., Renaud, S., Lewis, N., & Benazzouz, A. (2020). In vivo validation of a new portable stimulator for chronic deep brain stimulation in freely moving rats. Journal of Neuroscience Methods, 333, 108577.

2019

  1. De Roux, E., Degache, A., Terosiet, M., Kölbl, F., Boissière, M., Pauthe, E., Histace, A., Bernus, O., Lewis, N., & Romain, O. (2019). Orthogonal Multitone Electrical Impedance Spectroscopy (OMEIS) for the Study of Fibrosis Induced by Active Cardiac Implants. Journal of Sensors, 2019(1), 7180694.
  2. De Roux, E., Terosiet, M., Kölbl, F., Boissière, M., Histace, A., & Romain, O. (2019). OFDM-based electrical impedance spectroscopy technique for pacemaker-induced fibrosis detection implemented in an ARM microprocessor. Microprocessors and Microsystems, 70, 38–46.

2018

  1. de Roux, E., Terosiet, M., Kolbl, F., Boissière, M., Banet, P., Chrun, J., Pauthe, E., Romain, O., Histace, A., & Aubert, P.-H. (2018). Differentiation Between Fibroblast and their Extracellular Matrix in an In-Vitro Electrical Impedance Spectroscopy Setup by Using a Custom Electronic Portable System. FETCH 2018 (Ecole d’Hiver Francophone Sur Les Technologies De Conception Des Systèmes Embarqués Hétérogènes).
  2. De Roux, E., Terosiet, M., Kolbl, F., Boissière, M., Histace, A., & Romain, O. (2018). Toward an OFDM-Based Technique for Electrochemical Impedance Spectroscopy. 2018 21st Euromicro Conference on Digital System Design (DSD), 484–487.
  3. De Roux, E., Terosiet, M., Kölbl, F., Boissière, M., Pauthe, E., Histace, A., & Romain, O. (2018). Toward an embedded OFDM-based system for living cells study by electrochemical impedance spectroscopy. 2018 IEEE 20th International Conference on e-Health Networking, Applications and Services (Healthcom), 1–6.
  4. Sotière, J., Terosiet, M., De Roux, E., Von Chong, A., Kölbl, F., Histace, A., & Romain, O. (2018). Versatile SAR-ADC for Biomedical Applications. 2018 New Generation of CAS (NGCAS), 9–12.
  5. Kölbl, F., Boulboul, N., Commereuc, M., & Bourdel, E. (2018). A microstrip resonator based sensor for GHz characterization of in vitro cell culture. 2018 12th International Conference on Sensing Technology (ICST), 319–323.
  6. Degache, A., N’Kaoua, G., Lewis, N., Kolbl, F., & Bernus, O. (2018). Preliminary Study of Fibrotic Cardiac Tissues Characterization Using Impedance Spectroscopy. International Workshop on Impedance Spectroscopy (IWIS).
  7. Regnacq, L., Degache, A., Castelli, J., N’Kaoua, G., Bornat, Y., de Gannes, F. P., Renaud, S., Lagroye, I., Lewis, N., Kolbl, F., & others. (2018). Preliminary Investigation Towards Embedded Impedance Spectroscopy in Implanted Stimulators. International Workshop on Impedance Spectroscopy (IWIS).

2017

  1. De Roux, E., Terosiet, M., Kölbl, F., Chrun, J., Aubert, P.-H., Banet, P., Boissière, M., Pauthe, E., Histace, A., & Romain, O. (2017). Wireless and portable system for the study of in-vitro cell culture impedance spectrum by electrical impedance spectroscopy. 2017 Euromicro Conference on Digital System Design (DSD), 456–461.
  2. Castelli, J., Kölbl, F., Siu, R., N’Kaoua, G., Bornat, Y., Mangalore, A., Hillen, B., Abbas, J. J., Renaud, S., Jung, R., & others. (2017). An IC-based controllable stimulator for respiratory muscle stimulation investigations. 2017 39th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 1970–1973.
  3. Capllonch-Juan, M., Kölbl, F., & Sepulveda, F. (2017). Unidirectional ephaptic stimulation between two myelinated axons. 2017 39th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 230–233.
  4. De Roux, E., Terosiet, M., Kolbl, F., Boissière, M., Banet, P., Chrun, J., Aubert, P.-H., Pauthe, E., Romain, O., & Histace, A. (2017). Prototype of a Wireless System for Electrical Impedance Spectroscopy: Demonstration of Real Time Measurements on Cells and Biological Medium. IEEE International Workshop on Signal Processing Systems, accepted.

2016

  1. Juan, M. C., Kölbl, F., & Sepulveda, F. (2016). Optimisation of the spatial discretisation of myelinated axon models. 2016 8th Computer Science and Electronic Engineering (CEEC), 216–221.
  2. Kolbl, F., Juan, M. C., & Sepulveda, F. (2016). Impact of the angle of implantation of transverse intrafascicular multichannel electrodes on axon activation. 2016 IEEE Biomedical Circuits and Systems Conference (BioCAS), 484–487.
  3. Naudet, F., Kölbl, F., N’kaoua, G., Faggiani, E., Ribot, B., Renaud, S., Lewis, N., & Benazzouz, A. (2016). In vivo validation of a new wireless portable stimulator for chronic deep brain stimulation in freely moving rats: 75. Movement Disorders, 31, S28.
  4. Castelli, J., Renaud, S., Bornat, Y., Kölbl, F., Siu, R., Mangalore, A., Hillen, B., Abbas, J., Lewis, N., Jung, R., & others. (2016). An IC-based controllable stimulator for in vivo experiments. CRCNS Conference.

2015

  1. Kölbl, F., & Demosthenous, A. (2015). A figure of merit for neural electrical stimulation circuits. 2015 37th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC), 2075–2078.

2014

  1. Kölbl, F., N’Kaoua, G., Naudet, F., Berthier, F., Faggiani, E., Renaud, S., Benazzouz, A., & Lewis, N. (2014). An embedded deep brain stimulator for biphasic chronic experiments in freely moving rodents. IEEE Transactions on Biomedical Circuits and Systems, 10(1), 72–84.
  2. Kölbl, F. (2014). Design of electrical adaptive stimulators for different pathological contexts: a global approach [PhD thesis]. Université de Bordeaux.
  3. Kölbl, F., Guillaume, R., Hasler, J., Joucla, S., Yvert, B., Renaud, S., & Lewis, N. (2014). A closed-loop charge balancing FPAA circuit with sub-nano-amp DC error for electrical stimulation. 2014 IEEE Biomedical Circuits and Systems Conference (BioCAS) Proceedings, 616–619.

2013

  1. Kölbl, F., Sabatier, J., N’Kaoua, G., Naudet, F., Faggiani, E., Benazzouz, A., Renaud, S., & Lewis, N. (2013). Characterization of a non linear fractional model of electrode-tissue impedance for neuronal stimulation. 2013 IEEE Biomedical Circuits and Systems Conference (BioCAS), 338–341.

2010

  1. Zbrzeski, A., Hasler, P., Kölbl, F., Syed, E., Lewis, N., & Renaud, S. (2010). A programmable bioamplifier on FPAA for in vivo neural recording. 2010 Biomedical Circuits and Systems Conference (BioCAS), 114–117.
  2. Kölbl, F., Zbrzeski, A., Syed, E., Renaud, S., & others. (2010). In vivo electrical characterization of deep brain electrode and impact on bio-amplifier design. 2010 Biomedical Circuits and Systems Conference (BioCAS), 210–213.
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