arXiv · 2608.08828
Electronic bistability, discontinuous switching and stochasticity in a two-dimensional semiconductor
Abstract
Bistability - two stable electronic states under the same bias - underlies switching and memory, but is usually absent in transistors and must be engineered through material means: doped tunnel junctions, filaments in memristors, or phase transitions. Here we demonstrate a transistor with intrinsic electronic bistability in a single chemically homogeneous crystal. In dual-gated black phosphorus, whose band gap narrows under a perpendicular electric field due to a giant Stark effect, the gates not only modulate carrier density but also reshape the band profile, forming interband tunnel junctions in the channel. Transport across the two-gate parameter space reveals competing conduction regimes - diffusive, two tunnelling channels and Zener breakdown - whose interplay produces negative differential conductance and transconductance, discontinuous switching, and hysteresis with the state set by gate history. Moreover, the switching remains intrinsically stochastic, yet statistically stable within a narrow range of gate voltages, providing an electrically programmable source of randomness. Devices based on this principle should be realisable in other two-dimensional semiconductors, opening a route to next-generation computing architectures in which nonlinearity, switching, memory and stochasticity are integrated within a single electrostatically programmable element.
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S. Jana, M. Kravtsov, A. Ermakov, X. Zhou, A. Kudriashov, L. Elesin, A. L. Shilov, D. A. Svintsov, T. Taniguchi, K. Watanabe, K. S. Novoselov, A. Avsar, A. Principi, D. A. Bandurin. 2026-08-09. Electronic bistability, discontinuous switching and stochasticity in a two-dimensional semiconductor. https://arxiv.org/abs/2608.08828
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