A High-Finesse Suspended Interferometric Sensor for Macroscopic Quantum Mechanics with Femtometre Sensitivity

Jiri Smetana*, Tianliang Yan, Vincent Boyer, Denis Martynov

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

We present an interferometric sensor for investigating macroscopic quantum mechanics on a table-top scale. The sensor consists of a pair of suspended optical cavities with finesse over 350,000 comprising 10 g fused silica mirrors. The interferometer is suspended by a four-stage, light, in-vacuum suspension with three common stages, which allows for us to suppress common-mode motion at low frequency. The seismic noise is further suppressed by an active isolation scheme, which reduces the input motion to the suspension point by up to an order of magnitude starting from 0.7 Hz. In the current room-temperature operation, we achieve a peak sensitivity of 0.5 fm/Hz in the acoustic frequency band, limited by a combination of readout noise and suspension thermal noise. Additional improvements of the readout electronics and suspension parameters will enable us to reach the quantum radiation pressure noise. Such a sensor can eventually be utilized for demonstrating macroscopic entanglement and for testing semi-classical and quantum gravity models.
Original languageEnglish
Article number2375
Number of pages14
JournalSensors
Volume24
Issue number7
DOIs
Publication statusPublished - 8 Apr 2024

Keywords

  • macroscopic quantum mechanics
  • interferometry
  • quantum optics

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