SearcharxivSearch

arXiv subjects

Q. Greffe

Publications and source records attributed to Q. Greffe.

2 recordsLinked to original sources

A material-agnostic platform to probe spin-phonon interactions using high-overtone bulk acoustic wave resonators

Spin-phonon interactions have a dual role in emerging spin-based quantum technologies. While they can be a limitation to device performance through decoherence, they also serve as a critical resource for coherent spin control, detection, and the realization of spin-based quantum networks. However, their direct characterization remains a challenge and is usually material-dependent. Here, we introduce a technique to probe spin-phonon coupling at millikelvin temperatures and gigahertz frequencies, using high-overtone bulk acoustic wave resonators (HBARs) integrated with arbitrary crystals via visco-elastic transfer of thin-film lithium niobate transducers. By tuning the Larmor frequency of dilute spin ensembles into resonance with HBAR modes, we extract the anisotropy and strength of spin-phonon interactions from acoustic dispersion and dissipation measurements. We demonstrate this approach in calcium tungstate (CaWO4) and yttrium orthosilicate (Y2SiO5), achieving cooperativities up to 0.5 for erbium dopant ensembles. Our method enables the study of spin-phonon interactions in complex crystalline materials, with minimal fabrication constraints. These results will facilitate the design of hybrid quantum systems and the quest for ion-matrix combination with enhanced spin-phonon coupling.

cond-mat.mes-hall

Approaching optimal microwave-acoustic transduction on lithium niobate using SQUID arrays

Electronic devices exploiting acoustic vibrations are ubiquitous in classical and quantum technologies. Central to these devices is the transducer, which enables the exchange of signals between electrical and acoustic networks. Among the various transduction mechanisms, piezoelectricity remains the most widely used. However, conventional piezoelectric transducers are limited to either small efficiencies or narrow bandwidths and they typically operate at fixed frequency. These limitations restrict their utility in many applications. Here we propose and demonstrate a robust strategy to realize piezoelectric microwave-acoustic transduction close to the maximal efficiency-bandwidth product of lithium niobate. We use SQUID arrays to transform the large complex impedance of wide-band interdigital transducers into 50 $\Omega$ and demonstrate unprecedented efficiency$\times$bandwidth $\approx$ 440 MHz, with a maximum efficiency of 62% at 5.7 GHz. Moreover, leveraging the flux dependence of SQUIDs, we realize transducers with in-situ tunability across nearly an octave around 5.5 GHz. Our transducer can be readily connected to other superconducting quantum devices, with applications in microwave-to-optics conversion schemes, quantum-limited phonon detection, or acoustic spectroscopy in the 4-8 GHz band.

cond-mat.mes-hall