Login / Signup

Emergence and Dynamical Stability of a Charge Time-Crystal in a Current-Carrying Quantum Dot Simulator.

Subhajit SarkarYonatan Dubi
Published in: Nano letters (2022)
Periodically driven open quantum systems that never thermalize exhibit a discrete time-crystal behavior, a nonequilibrium quantum phenomenon that has shown promise in quantum information processing applications. Measurements of time-crystallinity are currently limited to (magneto-) optical experiments in atom-cavity systems and spin-systems making it an indirect measurement. We theoretically show that time-crystallinity can be measured directly in the charge-current from a spin-less Hubbard ladder, which can be simulated on a quantum-dot array. We demonstrate that one can dynamically tune the system out and then back on a time-crystal phase, proving its robustness against external forcings. These findings motivate further theoretical and experimental efforts to simulate the time-crystal phenomena in current-carrying nanoscale systems.
Keyphrases
  • molecular dynamics
  • density functional theory
  • high resolution
  • room temperature
  • solid state
  • single molecule
  • energy transfer
  • monte carlo
  • big data
  • atomic force microscopy
  • deep learning
  • ionic liquid
  • high speed