Down-conversion of a single photon as a probe of many-body localization
arXiv:2203.17186 · doi:10.1038/s41586-022-05615-y
Abstract
Decay of a particle into more particles is a ubiquitous phenomenon to interacting quantum systems, taking place in colliders, nuclear reactors, or solids. In a non-linear medium, even a single photon would decay by down-converting (splitting) into lower frequency photons with the same total energy, at a rate given by Fermi's Golden Rule. However, the energy conservation condition cannot be matched precisely if the medium is finite and only supports quantized modes. In this case, the photon's fate becomes the long-standing question of many-body localization (MBL), originally formulated as a gedanken experiment for the lifetime of a single Fermi-liquid quasiparticle confined to a quantum dot. Here we implement such an experiment using a superconducting multi-mode cavity, the non-linearity of which was tailored to strongly violate the photon number conservation. The resulting interaction attempts to convert a single photon excitation into a shower of low-energy photons, but fails due to the MBL mechanism, which manifests as a striking spectral fine structure of multi-particle resonances at the cavity's standing wave mode frequencies. Each resonance was identified as a many-body state of radiation composed of photons from a broad frequency range, and not obeying the Fermi's Golden Rule theory. Our result introduces a new platform to explore fundamentals of MBL without having to control many atoms or qubits.
References in corpus (9)
- Many body localization and thermalization in quantum statistical mechanics
- Localization of interacting fermions at high temperature
- Phenomenology of fully many-body-localized systems
- Spectral signatures of many-body localization with interacting photons
- Controlling many-body dynamics with driven quantum scars in Rydberg atom arrays
- Black-box superconducting circuit quantization
- Possible experimental manifestations of the many-body localization
- The Super-Strong Coupling Regime of Cavity Quantum Electrodynamics
- Tuning the inductance of Josephson junction arrays without SQUIDs
Cited by in corpus (20)
- Nonperturbative cavity quantum electrodynamics: is the Jaynes-Cummings model still relevant?
- Efficient Microwave Photon to Electron Conversion in a High Impedance Quantum Circuit
- Emergent quantum phase transition of a Josephson junction coupled to a high-impedance multimode resonator
- Inelastic decay from integrability
- Direct detection of down-converted photons spontaneously produced at a single Josephson junction
- Quantum phase transitions and cat states in cavity-coupled quantum dots
- Metrics and properties of optimal gauges in multimode cavity QED
- Band engineering and study of disorder using topology in compact high kinetic inductance cavity arrays
- Observation of collapse and revival in a superconducting atomic frequency comb
- Bloch oscillations in a transmon embedded in a resonant electromagnetic environment
- Strong coupling between a single-photon and a two-photon Fock state
- Circuit QED theory of direct and dual Shapiro steps with finite-size transmission line resonators
- Entangled Photon-Pair Emission in Waveguide Circuit QED from a Cooper Pair Splitter
- Pure kinetic inductance coupling for cQED with flux qubits
- Ultrafast Excitation Exchange in a Maxwell-Fish-Eye Lens
- Extended Josephson junction qubit system
- Machine learning via relativity-inspired quantum dynamics
- Quantum simulation of the microscopic to macroscopic crossover using superconducting quantum impurities
- Nonequilibrium plasmon liquid in a Josephson junction chain
- Photon-instanton scattering in a superconducting circuit: Beyond the very high impedance regime