LISA pathfinder appreciably constrains collapse models
Abstract
Spontaneous collapse models are phenomological theories formulated to address major difficulties in macroscopic quantum mechanics. We place significant bounds on the parameters of the leading collapse models, the continuous spontaneous localization (CSL) model, and the Diosi-Penrose (DP) model, by using LISA Pathfinder's measurement, at a record accuracy, of the relative acceleration noise between two free-falling macroscopic test masses. In particular, we bound the CSL collapse rate to be at most (2.96±0.12)×10^(−8) s^(−1). This competitive bound explores a new frequency regime, 0.7 to 20 mHz, and overlaps with the lower bound 10^(−8±2) s^(−1) proposed by Adler in order for the CSL collapse noise to be substantial enough to explain the phenomenology of quantum measurement. Moreover, we bound the regularization cutoff scale used in the DP model to prevent divergences to be at least 40.1±0.5 fm, which is larger than the size of any nucleus. Thus, we rule out the DP model if the cutoff is the size of a fundamental particle.
Additional Information
© 2017 American Physical Society. Received 20 July 2016; revised manuscript received 12 August 2016; published 28 April 2017. We acknowledge support from the National Science Foundation Grants No. PHY-1404569 and No. PHY-1506453, from the Australian Research Council Grants No. FT130100329 and No. DP160100760, and from the Institute for Quantum Information and Matter, a Physics Frontier Center.Attached Files
Published - PhysRevD.95.084054.pdf
Submitted - 1606.03637v2.pdf
Files
Name | Size | Download all |
---|---|---|
md5:b50073199856dc49559b2cad497687ac
|
152.4 kB | Preview Download |
md5:360636e05efa9377ec995d9c11fd1d97
|
93.4 kB | Preview Download |
Additional details
- Eprint ID
- 72567
- Resolver ID
- CaltechAUTHORS:20161205-144444031
- NSF
- PHY-1404569
- NSF
- PHY-1506453
- Australian Research Council
- FT130100329
- Australian Research Council
- DP160100760
- Institute for Quantum Information and Matter (IQIM)
- Created
-
2016-12-06Created from EPrint's datestamp field
- Updated
-
2021-11-11Created from EPrint's last_modified field
- Caltech groups
- Institute for Quantum Information and Matter, TAPIR, Astronomy Department