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Jamming-controlled stochasticity in metal-insulator switching

Nicolò D'Anna, Nareg Ghazikhanian, Katherine Matthews, Daseul Ham, Su Yong Lee, Alex Frano, Iván K. Schuller, Oleg Shpyrko

Peer-reviewed journalReal-world use

In the authors' words

Abstract Understanding and controlling phase transitions is fundamental to physics and central to many technological revolutions. There is currently strong interest in materials with coupled structural and electronic phase transitions, where controlling the transition plasticity naturally yields built-in memory, key for emulating neurons and synapses in neuromorphic technologies. Here, operando coherent Bragg X-ray diffraction is used to study the evolution of the nano-domain distribution at the micron-scale in neuromorphic devices made from the archetypal Mott insulator vanadium dioxide. Electrical switching leads to nano-domain reconfiguration over thousands of seconds and a jamming transition. Repetitive above-threshold currents plastically drive the system into a jammed/glassy state where switching is deterministic. Sub-threshold currents erase the short-term memory defined by the nano-domain distribution, recovering stochastic switching, thus offering a path for in-device learning. These results highlight the importance of nanoscale physics in phase transitions, even for macroscopic devices, and offer guidance for future device operation.

Main resultThe abstract does not state a limitation.

Appeared: Saturday, September 26. Nature Communications. Peer-reviewed journal.

DOI: 10.1038/s41467-026-76844-2