The outstanding challenge that MaQSens is prepared to achieve is to implement quantum control in a regime of long coherence times, large masses and strong coupling. We go radically beyond the state-of-the-art by combining in a new way superconductors with quantum optomechanics. The superconducting mechanical object becomes an active and integral element in the superconducting quantum circuit, for which exceptional
quantum control has already been achieved. This has two dramatic consequences:
(i) By inductively coupling a superconducting cantilever to a superconducting qubit we expect to reach the single- (microwave) photon strong coupling regime.
(ii) By combining magnetic levitation with magnetic coupling to superconducting circuits we will profit from extremely long coherence times (we target trap frequencies in the 1,000-10,000 Hz range with Q factors > 1e10 using type I superconductors) and large masses (>1e13 a.m.u.). Both scenarios will result in exceptional controllability of the combined quantum system.
If successful, MaQSens will open up a completely new parameter regime for macroscopic quantum physics experiments, covering unprecedented large masses (>1013 a.m.u.) and long coherence times (> 1ms) in an architecture that offers full quantum control. This opens up a completely new generation of fundamental physics studies of macroscopic quantum phenomena. Other areas of relevance include the scientific foundation of magnetic levitation of micron-scale superconductors as well as high-precision tests of fundamental forces such as gravity or Casimir forces. Finally, the most fascinating avenue with the highest potential impact is certainly the investigation of quantum effects under the influence of gravity. The expected sensitivity to external forces of our superconducting magnetomechanical platform also opens a plethora of possible quantum-based sensing applications. Concerning impact on society, a success of MaQSens will generate an important contribution to the understanding of fundamental physics laws, an impact that would benefit all society. The consortium, comprising partners from both academia and industry, also contributes directly to the still uncommon dialogue between the fundamental sciences and industry. Finally, by operating at the forefront of modern quantum science and technology and by keeping close to industrial applications, MaQSens will empower new and high-potential actors for their future roles as technological leaders in academia and industry.