English

Enhanced Laser Cooling of a Mechanical Resonator via Zero-Photon Detection

Quantum Physics 2025-05-07 v3 Mesoscale and Nanoscale Physics Optics

Abstract

Throughout quantum science and technology, measurement is used as a powerful resource for nonlinear operations and quantum state engineering. In particular, single-photon detection is commonly employed for quantum-information applications and tests of fundamental physics. By contrast, and perhaps counter-intuitively, measurement of the absence of photons also provides useful information, and offers significant potential for a wide range of new experimental directions. Here, we propose and experimentally demonstrate cooling of a mechanical resonator below its laser-cooled mechanical occupation via zero-photon detection on the anti-Stokes scattered optical field and verify this cooling through heterodyne measurements. Our measurements are well captured by a stochastic master equation and the techniques introduced here open new avenues for cooling, quantum thermodynamics, quantum state engineering, and quantum measurement and control.

Keywords

Cite

@article{arxiv.2408.01734,
  title  = {Enhanced Laser Cooling of a Mechanical Resonator via Zero-Photon Detection},
  author = {Evan A. Cryer-Jenkins and Kyle D. Major and Jack Clarke and Georg Enzian and Magdalena Szczykulska and Jinglei Zhang and Arjun Gupta and Anthony C. Leung and Harsh Rathee and Andreas Ø. Svela and Anthony K. C. Tan and Almut Beige and Klaus Mølmer and Michael R. Vanner},
  journal= {arXiv preprint arXiv:2408.01734},
  year   = {2025}
}

Comments

Main: 5 pages, 2 figures. Supplemental: 6 pages, 2 figures