English

Finite-Time Optomechanical Cooling by Multi-Exceptional-Point Braiding

Quantum Physics 2026-07-25 v1

Abstract

Cooling protocols are usually optimized through static detunings and damping rates. Here we show that exceptional-point braiding can enhance finite-time optomechanical cooling under a fixed drive-power resource. We consider an auxiliary-cavity-assisted optomechanical system whose full three-mode drift contains two second-order exceptional points. Using the same prescribed power waveform for every protocol, we optimize only the detuning trajectory while matching its duration, endpoint, range, mean, and integrated control effort. Encircling either exceptional point produces a distinct pairwise eigenbranch exchange, whereas enclosing both generates a three-branch spectral cycle. The optimized two-EP trajectory lowers the final mechanical occupation by 19.2%19.2\% relative to the optimized non-enclosing class and by 9.9%9.9\% relative to the best single-EP protocol. A full Bogoliubov calculation including counter-rotating Stokes processes preserves this hierarchy. These results establish multi-exceptional-point braiding as a controllable resource for finite-time mechanical state preparation.

Cite

@article{arxiv.2607.23179,
  title  = {Finite-Time Optomechanical Cooling by Multi-Exceptional-Point Braiding},
  author = {Borhan Ahmadi},
  journal= {arXiv preprint arXiv:2607.23179},
  year   = {2026}
}