Creating large Fock states and massively squeezed states in optics using systems with nonlinear bound states in the continuum

Author:

Rivera Nicholas12ORCID,Sloan Jamison3,Salamin Yannick3,Joannopoulos John D.2,Soljačić Marin23

Affiliation:

1. Department of Physics, Harvard University, Cambridge, MA 02138

2. Department of Physics, Massachusetts Institute of Technology, Cambridge, MA 02139

3. Research Laboratory of Electronics, Massachusetts Institute of Technology, Cambridge, MA 02139

Abstract

The quantization of the electromagnetic field leads directly to the existence of quantum mechanical states, called Fock states, with an exact integer number of photons. Despite these fundamental states being long-understood, and despite their many potential applications, generating them is largely an open problem. For example, at optical frequencies, it is challenging to deterministically generate Fock states of order two and beyond. Here, we predict the existence of an effect in nonlinear optics, which enables the deterministic generation of large Fock states at arbitrary frequencies. The effect, which we call an n -photon bound state in the continuum, is one in which a photonic resonance (such as a cavity mode) becomes lossless when a precise number of photons n is inside the resonance. Based on analytical theory and numerical simulations, we show that these bound states enable a remarkable phenomenon in which a coherent state of light, when injected into a system supporting this bound state, can spontaneously evolve into a Fock state of a controllable photon number. This effect is also directly applicable for creating (highly) squeezed states of light, whose photon number fluctuations are (far) below the value expected from classical physics (i.e., shot noise). We suggest several examples of systems to experimentally realize the effects predicted here in nonlinear nanophotonic systems, showing examples of generating both optical Fock states with large n ( n  >  10), as well as more macroscopic photonic states with very large squeezing, with over 90% less noise (10 dB) than the classical value associated with shot noise.

Funder

DOD | USAF | AMC | Air Force Office of Scientific Research

DOD | USA | RDECOM | Army Research Office

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

Reference88 articles.

1. Squeezed state of light

2. Sub-Poissonian processes in quantum optics

3. Real-World Quantum Sensors: Evaluating Resources for Precision Measurement

4. Braginskiĭ Quantum-mechanical limitations in macroscopic experiments and modern experimental technique.

5. Efficient multiphoton sampling of molecular vibronic spectra on a superconducting bosonic processor;Wang C. S.;Phys. Rev. X,2020

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