From Heat Capacity to Coherence in Ultra-Narrow-Linewidth Solid-State Optical Emitters at Sub-Kelvin Temperatures
arXiv:2504.21422 · doi:10.1103/vj7j-jp9y
Abstract
The coherence properties of optical emitters in crystals are crucial for quantum technologies and optical frequency metrology. Cooling to sub-kelvin temperatures can markedly enhance coherence, making it important to identify the parameters governing emitter and host crystal behavior in this regime. We investigate a Czochralski-grown europium-doped yttrium orthosilicate crystal, reporting measurements of its heat capacity and optical coherence. Heat capacity not only informs thermal noise limits in metrology schemes but can also reveal two-level systems (TLS) arising from crystal imperfections via a linear-in-temperature term. Below 1 K, where phonon contributions are suppressed, TLS can drive decoherence, leading to a linear broadening of the homogeneous linewidth. From our data, we place an upper bound on the TLS contribution. This, together with constant optical linewidths between 300 mK and 2 K measured via photon-echo lifetimes, is consistent with a minimal TLS effects in our sample. A low level of TLS is particularly important for the performance of optical quantum devices based on doped crystals, since their presence could otherwise limit further improvements in coherence at sub-kelvin temperatures.
https://link.aps.org/doi/10.1103/vj7j-jp9y
References in corpus (19)
- Thermodynamical fluctuations and photo-thermal shot noise in gravitational wave antennae
- Thermodynamic signatures of quantum criticality in cuprates
- All-optical control of the silicon-vacancy spin in diamond at millikelvin temperatures
- Frequency-stabilization to 6x10^-16 via spectral-hole burning
- Multi-mode and long-lived quantum correlations between photons and spins in a crystal
- Factoring 2048-bit RSA Integers in 177 Days with 13436 Qubits and a Multimode Memory
- On-demand quantum storage of photonic qubits in an on-chip waveguide
- Long-distance multiplexed quantum teleportation from a telecom photon to a solid-state qubit
- Unusual interplay between superconductivity and field-induced charge order in YBa2Cu3Oy
- Rare-earth-mediated opto-mechanical system in the reversed dissipation regime
- Characteristics of long-lived persistent spectral holes in at
- Double-heterodyne probing for ultra-stable laser based on spectral hole burning in a rare-earth doped crystal
- Rapid cooling of a strain-coupled oscillator by optical phaseshift measurement
- Strain-mediated ion-ion interaction in rare-earth-doped solids
- Anomalous sub-kelvin thermal frequency shifts of ultra narrow-linewidth solid state emitters
- Multi-mode Heterodyne Laser Interferometry Realized via Software Defined Radio
- Piezo-orbital backaction force in a rare-earth doped crystal
- Thermal-noise Limits to the Frequency Stability of Burned Spectral Holes
- Temperature-dependent mechanical losses of Eu:YSiO for spectral hole burning laser stabilization