Purcell-enhanced spin-phonon coupling with a single color center
arXiv:2503.09946 · doi:10.1038/s41586-026-10495-7
Abstract
The radiative properties of atoms are inherently linked to their surrounding environment. Placing an electromagnetic resonator around atoms can enhance spontaneous emission, as shown by Purcell in the 1940s. This approach is now routinely used in quantum computing and communication to channel photons emitted by atoms into well-defined modes and control atom-photon interactions. For solid-state artificial atoms, such as color-centers, the host lattice introduces an acoustic environment, allowing excited atoms to relax by emitting phonons. Here we observe the acoustic Purcell effect by constructing a specially engineered, microwave-frequency nanomechanical resonator around a color-center spin qubit in diamond. Using a co-localized optical mode of the structure that strongly couples to the color-center's excited state, we perform single-photon-level laser spectroscopy at milliKelvin temperatures and observe ten-fold faster spin relaxation when the spin qubit is tuned into resonance with a 12 GHz acoustic mode. Additionally, we use the color-center as an atomic-scale probe to measure the broadband phonon spectrum of the nanostructure up to a frequency of 28 GHz. Our work establishes a new regime of control for quantum defects in solids and paves the way for interconnects between atomic-scale quantum memories and qubits encoded in acoustic and superconducting devices.
39 pages, 20 figures
References in corpus (33)
- Cavity Optomechanics
- Circuit Quantum Electrodynamics
- Optomechanical Crystals
- Cavity-based quantum networks with single atoms and optical photons
- Single-Photon Switching and Entanglement of Solid-State Qubits in an Integrated Nanophotonic System
- Large Scale Modular Quantum Computer Architecture with Atomic Memory and Photonic Interconnects
- Experimental demonstration of memory-enhanced quantum communication
- Silicon-Vacancy Spin Qubit in Diamond: A Quantum Memory Exceeding 10 ms with Single-Shot State Readout
- The electronic structure of the silicon vacancy color center in diamond
- Dipole induced transparency in drop-filter cavity-waveguide systems
- Dynamic strain-mediated coupling of a single diamond spin to a mechanical resonator
- Photon-mediated interactions between quantum emitters in a diamond nanocavity
- Strain engineering of the silicon-vacancy center in diamond
- Phononic bandgap nano-acoustic cavity with ultralong phonon lifetime
- Probing spin-phonon interactions in silicon carbide with Gaussian acoustics
- Single-photon quantum hardware: towards scalable photonic quantum technology with a quantum advantage
- An integrated nanophotonic quantum register based on silicon-vacancy spins in diamond
- Phonon networks with SiV centers in diamond waveguides
- Resolving the energy levels of a nanomechanical oscillator
- Controlling spin relaxation with a cavity
- Diamond optomechanical crystals
- A fiber-coupled diamond quantum nanophotonic interface
- A quantum memory at telecom wavelengths
- Quantum networks with neutral atom processing nodes
- Enhanced strain coupling of nitrogen vacancy spins to nanoscale diamond cantilevers
- A perspective on hybrid quantum opto- and electromechanical systems
- Coupling of a Single Tin-vacancy Center to a Photonic Crystal Cavity in Diamond
- Solid-state electron spin lifetime limited by phononic vacuum modes
- Phonon engineering of atomic-scale defects in superconducting quantum circuits
- Engineering Phonon-Qubit Interactions using Phononic Crystals
- Quantum optomechanical control of long-lived bulk acoustic phonons
- Ultracoherent GHz Diamond Spin-Mechanical Lamb Wave Resonators
- Frequency Fluctuations in Nanomechanical Resonators due to Quantum Defects