English

Frequency as a Clock: Synchronization and Intrinsic Recovery in Graphene Transistor Dynamics

Mesoscale and Nanoscale Physics 2025-10-09 v2

Abstract

Hysteresis and memory effects in graphene field-effect transistors (GFETs) offer unique opportunities for neuromorphic computing, sensing, and memory applications, yet their physical origins remain debated due to competing volatile and nonvolatile interpretations. Here, we present a unified dynamic model that captures the essential physics of the GFET response under periodic gate modulation, accounting for both intrinsic relaxation processes and externally driven charge transfer. By modeling non-equilibrium carrier dynamics as a competition between injection and reabsorption rates, we uncover two distinct regimes: one governed by intrinsic, frequency-independent relaxation and another exhibiting frequency-locked behavior where the response is tied to the external drive. This distinction resolves apparent nonvolatile effects and explains loop invariance in floating-gate structures via displacement current-driven charge injection. Our framework predicts the evolution of the hysteresis loop shape, amplitude, and direction across a wide range of driving conditions, offering a versatile tool for interpreting experimental results and guiding the design of next-generation graphene-based electronic systems.

Keywords

Cite

@article{arxiv.2506.08728,
  title  = {Frequency as a Clock: Synchronization and Intrinsic Recovery in Graphene Transistor Dynamics},
  author = {Victor Lopez-Richard and Igor Ricardo Filgueira e Silva and Gabriel L. Rodrigues and Rafael Furlan de Oliveira and Kenji Watanabe and Takashi Taniguchi and Alisson R. Cadore},
  journal= {arXiv preprint arXiv:2506.08728},
  year   = {2025}
}

Comments

9 pages, 5 figures