Published December 2016 | Version v1
Journal article

Macroscopic Quantum Resonators (MAQRO): 2015 update

  • 1. University of Vienna, Vienna Center for Quantum Science and Technology, Vienna (Austria)
  • 2. University College London, Department of Physics and Astronomy, London (United Kingdom)
  • 3. INFN - Trieste Section, Trieste (Italy)
  • 4. University of Trieste, Department of Physics, Trieste (Italy)
  • 5. University of Swansea, Department of Physics, College of Science, Swansea (United Kingdom)
  • 6. University of Birmingham, School of Physics and Astronomy, Birmingham (United Kingdom)
  • 7. Institute of Space Systems, German Aerospace Center (DLR), Bremen (Germany)
  • 8. University of Bremen, Center of Applied Space Technology and Micro Gravity (ZARM), Bremen (Germany)
  • 9. Austrian Academy of Sciences, Institute of Quantum Optics and Quantum Information (IQOQI), Vienna (Austria)
  • 10. The French Aerospace Lab, ONERA, Chatillon (France)
  • 11. Airbus Defence and Space GmbH, Immenstaad (Germany)
  • 12. ENS-PSL Research University, Laboratoire Kastler Brossel, UPMC-Sorbonne Universites, CNRS, College de France, Paris (France)
  • 13. Laboratori Nazionali di Frascati dell'INFN, Frascati (Italy)
  • 14. University of St. Andrews, School of Physics and Astronomy, St. Andrews (United Kingdom)
  • 15. Wigner Research Center for Physics, P.O. Box 49, Budapest (Hungary)
  • 16. Humboldt-Universitaet zu Berlin, Institut fuer Physik, Berlin (Germany)
  • 17. Leibniz Universitaet Hannover, Institut fuer Quantenoptik, Hannover (Germany)
  • 18. ETH Zuerich, Photonics Laboratory, Zuerich (Switzerland)
  • 19. European Southern Observatory (ESO), Garching bei Muenchen (Germany)
  • 20. KTH Royal Institute of Technology and Stockholm University, Nordita, Stockholm (Sweden)
  • 21. Imperial College London, QOLS, Blackett Laboratory, London (United Kingdom)
  • 22. University of Queensland, ARC Centre for Engineered Quantum Systems, Brisbane (Australia)
  • 23. University of California, Department of Physics, Berkeley, CA (United States)
  • 24. Queen's University, Centre for Theoretical Atomic, Molecular and Optical Physics, School of Mathematics and Physics, Belfast (United Kingdom)
  • 25. Harvard-Smithsonian Center for Astrophysics, ITAMP, Cambridge, MA (United States)
  • 26. CERN - European Organization for Nuclear Research, EN-STI-TCD, Geneva (Switzerland)
  • 27. Perimeter Institute for Theoretical Physics, Waterloo, ON (Canada)
  • 28. Universitaet Ulm, Institut fuer Quantenphysik, Ulm (Germany)
  • 29. Texas A and M University Institute for Advanced Study (TIAS), Institute for Quantum Science and Engineering (IQSE), and Department of Physics and Astronomy, College Station, TX (United States)
  • 30. Vienna University of Technology, Vienna Center for Quantum Science and Technology, Institute of Atomic and Subatomic Physics, Vienna (Austria)
  • 31. California Institute of Technology, Applied Physics, Pasadena, CA (United States)
  • 32. Technische Universitaet Dresden, Institut fuer Luft- und Raumfahrttechnik, Dresden (Germany)
  • 33. Universita di Firenze, Dipartimento di Fisica e Astronomia and LENS, INFN, Sesto Fiorentino, Firenze (Italy)
  • 34. University of Southampton, Physics and Astronomy, Southampton (United Kingdom)
  • 35. National University of Singapore, Center for Quantum Technologies, Singapore (SG)
  • 36. University of Oxford, Atomic and Laser Physics, Clarendon Laboratory, Oxford (United Kingdom)

Description

Do the laws of quantum physics still hold for macroscopic objects - this is at the heart of Schroedinger's cat paradox - or do gravitation or yet unknown effects set a limit for massive particles? What is the fundamental relation between quantum physics and gravity? Ground-based experiments addressing these questions may soon face limitations due to limited free-fall times and the quality of vacuum and microgravity. The proposed mission Macroscopic Quantum Resonators (MAQRO) may overcome these limitations and allow addressing such fundamental questions. MAQRO harnesses recent developments in quantum optomechanics, high-mass matter-wave interferometry as well as state-of-the-art space technology to push macroscopic quantum experiments towards their ultimate performance limits and to open new horizons for applying quantum technology in space. The main scientific goal is to probe the vastly unexplored 'quantum-classical' transition for increasingly massive objects, testing the predictions of quantum theory for objects in a size and mass regime unachievable in ground-based experiments. The hardware will largely be based on available space technology. Here, we present the MAQRO proposal submitted in response to the 4th Cosmic Vision call for a medium-sized mission (M4) in 2014 of the European Space Agency (ESA) with a possible launch in 2025, and we review the progress with respect to the original MAQRO proposal for the 3rd Cosmic Vision call for a medium-sized mission (M3) in 2010. In particular, the updated proposal overcomes several critical issues of the original proposal by relying on established experimental techniques from high-mass matter-wave interferometry and by introducing novel ideas for particle loading and manipulation. Moreover, the mission design was improved to better fulfill the stringent environmental requirements for macroscopic quantum experiments. (orig.)

Availability note (English)

Available from: http://dx.doi.org/10.1140/epjqt/s40507-016-0043-7

Additional details

Publishing Information

Journal Title
EPJ Quantum Technology
Journal Volume
3
Journal Issue
1
Journal Page Range
p. 1-47
ISSN
2196-0763