Biasing the quantum vacuum to control macroscopic probability distributions

Author:

Roques-Carmes Charles1ORCID,Salamin Yannick12ORCID,Sloan Jamison1ORCID,Choi Seou1ORCID,Velez Gustavo1,Koskas Ethan1,Rivera Nicholas23,Kooi Steven E.4ORCID,Joannopoulos John D.24ORCID,Soljačić Marin12ORCID

Affiliation:

1. Research Laboratory of Electronics, MIT, Cambridge, MA, USA.

2. Department of Physics, MIT, Cambridge, MA, USA.

3. Department of Physics, Harvard University, Cambridge, MA, USA.

4. Institute for Soldier Nanotechnologies, MIT, Cambridge, MA, USA.

Abstract

Quantum field theory suggests that electromagnetic fields naturally fluctuate, and these fluctuations can be harnessed as a source of perfect randomness. Many potential applications of randomness rely on controllable probability distributions. We show that vacuum-level bias fields injected into multistable optical systems enable a controllable source of quantum randomness, and we demonstrated this concept in an optical parametric oscillator (OPO). By injecting bias pulses with less than one photon on average, we controlled the probabilities of the two possible OPO output states. The potential of our approach for sensing sub–photon-level fields was demonstrated by reconstructing the temporal shape of fields below the single-photon level. Our results provide a platform to study quantum dynamics in nonlinear driven-dissipative systems and point toward applications in probabilistic computing and weak field sensing.

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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