Electrically driven plasmon-polaritonic bistability in Dirac electron tunneling transistors
Abstract
Bistability-two distinct stable states under identical parameter-is not only a fundamental physical concept but also of importance in practical applications. While plasmon-polaritonic bistability representing history-dependent stable states within plasmonic systems has been theoretically predicted, it has yet to be demonstrated experimentally due to challenges in realizing suitable nonlinearity at feasible electric-field strengths. Here, we report the experimental observation of electrically driven plasmon-polaritonic bistability in graphene/hexagonal-boron-nitride/graphene tunneling transistors, achieved through momentum-conserving resonant tunneling of Dirac electrons. Using a small twist angle between graphene layers, we engineered devices exhibiting both electronic and plasmon-polaritonic bistability. This bistable plasmonic behavior can be precisely tuned through load resistance and electrostatic gating. Our findings open new pathways for exploring nonlinear optical and electronic phenomena in van der Waals heterostructures and mark a significant advance in nanoplasmonics, with potential applications in optical memory, sensing, and optoelectronic switching.
Keywords
Cite
@article{arxiv.2512.02909,
title = {Electrically driven plasmon-polaritonic bistability in Dirac electron tunneling transistors},
author = {Shuai Zhang and Yang Xu and Junhe Zhang and Dihao Sun and Yinan Dong and Matthew Fu and Takashi Taniguchi and Kenji Watanabe and Cory R. Dean and Monica Allen and Jeffery Allen and F. Javier Garcia de Abajo and Antti J. Moilanen and Lukas Novotny and D. N. Basov},
journal= {arXiv preprint arXiv:2512.02909},
year = {2026}
}
Comments
48 pages, 17 figues