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Cosmic Microwave Background Constraints Cast a Shadow On Continuous Spontaneous Localization Models
Jérôme Martin1, Vincent Vennin1,2
1Institut d'Astrophysique de Paris, UMR 7095-CNRS, Université Pierre et Marie Curie, 98bis boulevard Arago, 75014 Paris, France.
The continuous spontaneous localization model, which addresses quantum measurement problems, faces ambiguity in cosmology due to general relativity. Current cosmic microwave background data conflicts with lab experiments under this model.
Area of Science:
- Quantum mechanics
- Cosmology
- General relativity
Background:
- The continuous spontaneous localization (CSL) model offers a solution to the measurement problem in quantum mechanics.
- CSL couples the mass density of a quantum system to a stochastic white-noise field.
- Ambiguity arises in applying CSL to cosmology because mass density is not uniquely defined in general relativity.
Purpose of the Study:
- To investigate the implications of the continuous spontaneous localization model in a cosmological context.
- To explore the compatibility of CSL with observational data from the cosmic microwave background and laboratory experiments.
Main Methods:
- Analyzing the definition of mass density contrast within the framework of general relativity.
- Comparing predictions derived from the CSL model, using various natural choices for density contrast, with existing cosmological and laboratory data.
Main Results:
- The study reveals that the CSL model, when applied to cosmology, encounters significant ambiguity due to the ill-defined nature of mass density.
- Most common choices for the density contrast in the CSL model lead to a contradiction between cosmic microwave background measurements and results from laboratory experiments.
- This incompatibility suggests limitations of the CSL model in its current form for describing both quantum phenomena and cosmological observations.
Conclusions:
- The continuous spontaneous localization model, while promising for quantum measurement, presents challenges when integrated with general relativity and cosmological observations.
- The observed discrepancy between cosmic microwave background data and laboratory experiments under CSL highlights the need for refinement or alternative approaches.
- Further theoretical and experimental work is required to reconcile quantum mechanics and cosmology, potentially necessitating modifications to the CSL framework or exploring alternative theories.
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