Over the course of the project, progress was made in the theoretical development, application, and dissemination of results on nonlinear quantum optomechanical systems (QOMSs), their noise modeling, and their role in probing fundamental physics. Additional results were obtained for related systems. The work spans foundational theory, open-system modeling, and quantum sensing applications, resulting in a strong publication record across leading journals and preprints. Below is a summary of major activities and results, organized by thematic focus and aligned with the project objectives.
1. Development of New Theoretical Tools for Nonlinear QOMSs (Objective 1)
A core goal was to develop analytical tools capturing the complex dynamics of nonlinear optomechanical systems under realistic conditions, including strong driving and non-Markovian noise. A key step was the publication of a tutorial on a Lie-algebra decoupling method enabling solutions to otherwise intractable quantum dynamics, presented in PRX Quantum as Solving Quantum Dynamics with a Lie-Algebra Decoupling Method. The preprint Enhanced optomechanical nonlinearity through non-Markovian mechanical noise introduced a model showing noise-enhanced nonlinearity. A driven-dissipative system was also analyzed in Fast optomechanical photon blockade, revealing how a two-tone drive can optimize photon blockade.
2. Applications to Quantum Sensing and Force Detection (Objective 2)
While some theoretical results from Objective 1 took longer to mature, adjacent sensing applications were pursued. Constraining modified gravity with cavity optomechanics (NJP) showed that nonlinear QOMSs can help constrain dark energy models, albeit with sensitivity limits in large systems. The work Metrology of Gravitational Effects with Mechanical Quantum Systems provided a comprehensive overview of using mechanical quantum devices to probe gravitational fields. Sensing force gradients with cavity optomechanics while evading backaction (PRA) demonstrated backaction-evading gradiometry, though in the linear regime where most current experiments operate. Related work on Optimal quantum parametric feedback cooling (PRA) addressed state preparation methods essential for ultrasensitive measurements.
3. Exploration of Fundamental Physics and Quantum Gravity (Objective 3)
A major focus was exploring the quantum–gravity interface using nonlinear QOMSs. The invited Reviews of Modern Physics article Massive quantum systems as interfaces of quantum mechanics and gravity provided a field-defining overview, positioning QOMSs as platforms for detecting quantum gravitational effects, decoherence, and entanglement. Supporting this, the preprint Optimizing confidence in negative-partial-transpose-based entanglement criteria introduced improved methods for validating entanglement in noisy mechanical systems, a key capability for testing gravitational entanglement.
Dissemination and Exploitation of Results
The project yielded 12 peer-reviewed papers and preprints, several in collaboration with leading theoretical and experimental groups across Europe and the US. Results have been presented at international conferences and are now feeding into joint experimental projects. The developed methods are ready for adaptation to practical systems and continue to influence the broader quantum technology and fundamental physics communities.