condensed matter physics

A programmable superconductor created by light

arXiv:2607.14567

summary

The paper demonstrates a light‑programmable superconducting state in an aluminium‑silicon heterojunction, where femtosecond laser pulses can create, enhance, or erase macroscopic phase coherence and control the critical temperature.

Abstract

The quest for superconductivity created by light extends for more than half a century, yet direct evidence of a true zero-resistance state - whose macroscopic quantum phase coherence is both created and controlled by light - has remained elusive. Here we report for the first time on a complex but robust light-programmable superconducting (LiPS) state at an aluminium-silicon heterojunction that is created and fully controlled with femtosecond laser pulses. The superconducting critical temperatures - ranging from 1.8 to 8.5 K, can be increased or erased at will by the application of tailored pulse sequences. At low temperatures the LiPS state shows features characteristic of a Berezinski-Kosterlitz-Thouless topological transition, but another distinct state appears at temperatures above 2 K, which shows clear signatures of quantum phase disorder. In the presence of a magnetic field we observe behaviour characteristic of vortex pinning and creep consistent with the 2-dimensional (2D) nature of the phase coherent system. The origin of the LiPS effect is attributed to light pulse control of the Moire-like superlattice of misfit dislocations (MDs) arising from discommensurations between the Al and Si lattices which is visible by high-resolution electron microscopy. We show how light pulses can be used to control the superlattice periodicity and highlight the appearance of topologically protected soliton-like kinks along the dislocation lines, important for imparting controllable metastability to the system. The demonstration of LiPS paves the way for designing metastable superconducting devices with controllable phase-coherence, enabling applications such as light-engineered quantum circuits, local gap tuning in quantum processors, and optically switchable superconducting devices.

14 pages, 3 figures

Topics & keywords

#light-induced superconductivity#phase coherence control#heterostructure interfaces#BKT transition#vortex pinning#moire superlatticefemtosecond laser pulsesAl‑Si heterojunctioncritical temperature tuningmisfit dislocationssoliton-like kinksquantum phase disorder
A programmable superconductor created by light · wovepaper