Advanced iontronic spiking modes with multiscale diffusive dynamics in a fluidic circuit

Publication date

2024-01-26

Authors

Kamsma, TimORCID 0000-0002-8898-8337ISNI 0000000523924190
Rossing, E. A.
Spitoni, CristianORCID 0000-0003-0192-606XISNI 0000000398006090
Roij, René vanISNI 0000000392993654

Editors

Advisors

Supervisors

Document Type

/dk/atira/pure/researchoutput/researchoutputtypes/workingpaper/preprint
Open Access logo

License

Abstract

Fluidic iontronics is emerging as a distinctive platform for implementing neuromorphic circuits, characterized by its reliance on the same aqueous medium and ionic signal carriers as the brain. Drawing upon recent theoretical advancements in both iontronic spiking circuits and in dynamic transport of aqueous electrolytes through conical ion channels, which form fluidic memristors, we expand the repertoire of proposed neuronal spiking dynamics in iontronic circuits. Through a modelled circuit containing channels that carry a bipolar surface charge, we extract phasic bursting, mixed-mode spiking, tonic bursting, and threshold variability, all with spike voltages and frequencies within the typical range for mammalian neurons. These features are possible due to the strong dependence of the typical conductance memory retention time on the channel length, enabling timescales varying from individual spikes to bursts of multiple spikes within a single circuit. These advanced forms of neuronal-like spiking support the exploration of aqueous iontronics as an interesting platform for neuromorphic circuits.

Keywords

cond-mat.soft

Citation

Kamsma, T M, Rossing, E A, Spitoni, C & Roij, R V 2024 'Advanced iontronic spiking modes with multiscale diffusive dynamics in a fluidic circuit' arXiv. https://doi.org/10.48550/arXiv.2401.14921