4.8 Article

A macroscopic object passively cooled into its quantum ground state of motion beyond single-mode cooling

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NATURE COMMUNICATIONS
卷 12, 期 1, 页码 -

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NATURE PORTFOLIO
DOI: 10.1038/s41467-021-26457-8

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资金

  1. ERC CoG grant ULT-NEMS [647917]
  2. StG grant UNIGLASS [714692]
  3. STaRS-MOC project from Region Hauts-de-France
  4. ISITE-MOST project
  5. Leverhulme Trust [RPG-2018-213]
  6. Academy of Finland [308290, 307757, 312057]
  7. European Research Council [615755-CAVITYQPD]
  8. Aalto Centre for Quantum Engineering
  9. Academy of Finland Centre of Excellence programme [312057]
  10. European Union [732894, 824109]
  11. European Microkelvin Platform (EMP)
  12. Academy of Finland (AKA) [308290, 308290] Funding Source: Academy of Finland (AKA)

向作者/读者索取更多资源

Passive cooling allows devices to reach equilibrium with their environment without excess damping. The authors demonstrate passive cooling of a 15 μm drum-head device with MHz fundamental flexure to its quantum ground state. The quantum-to-classical crossover remains one of the most challenging questions in science.
Compared to active techniques, passive cooling of mechanical modes allows to work with devices in equilibrium with their environment without excess damping. Here, the authors demonstrate passive cooling and thermalisation of a 15 mu m drum-head device with MHz fundamental flexure to its quantum ground state. The nature of the quantum-to-classical crossover remains one of the most challenging open question of Science to date. In this respect, moving objects play a specific role. Pioneering experiments over the last few years have begun exploring quantum behaviour of micron-sized mechanical systems, either by passively cooling single GHz modes, or by adapting laser cooling techniques developed in atomic physics to cool specific low-frequency modes far below the temperature of their surroundings. Here instead we describe a very different approach, passive cooling of a whole micromechanical system down to 500 mu K, reducing the average number of quanta in the fundamental vibrational mode at 15 MHz to just 0.3 (with even lower values expected for higher harmonics); the challenge being to be still able to detect the motion without disturbing the system noticeably. With such an approach higher harmonics and the surrounding environment are also cooled, leading to potentially much longer mechanical coherence times, and enabling experiments questioning mechanical wave-function collapse, potentially from the gravitational background, and quantum thermodynamics. Beyond the average behaviour, here we also report on the fluctuations of the fundamental vibrational mode of the device in-equilibrium with the cryostat. These reveal a surprisingly complex interplay with the local environment and allow characteristics of two distinct thermodynamic baths to be probed.

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