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Single wavelength operating neuromorphic device based on a graphene-ferroelectric transistor

Applied Physics 2024-01-04 v1 Materials Science Optics

Abstract

As global data generation continues to rise, there is an increasing demand for revolutionary in-memory computing methodologies and efficient machine learning solutions. Despite recent progress in electrical and electro-optical simulations of machine learning devices, the all-optical nonthermal function remains challenging, with single wavelength operation still elusive. Here we report on an optical and monochromatic way of neuromorphic signal processing for brain-inspired functions, eliminating the need for electrical pulses. Multilevel synaptic potentiation-depression cycles are successfully achieved optically by leveraging photovoltaic charge generation and polarization within the photoferroelectric substrate interfaced with the graphene sensor. Furthermore, the demonstrated low-power prototype device is able to reproduce exact signal profile of brain tissues yet with more than two orders of magnitude faster response. The reported properties should trigger all-optical and low power artificial neuromorphic development based on photoferroelectric structures.

Keywords

Cite

@article{arxiv.2401.01679,
  title  = {Single wavelength operating neuromorphic device based on a graphene-ferroelectric transistor},
  author = {K. Maity and J. -F. Dayen and B. Doudin and R. Gumeniuk and B. Kundys},
  journal= {arXiv preprint arXiv:2401.01679},
  year   = {2024}
}

Comments

9 pages, 6 figures, research article

R2 v1 2026-06-28T14:07:43.091Z