Testing the postulates of quantum mechanics with coherent states of light and homodyne detection
arXiv:2308.03446 · doi:10.1088/1367-2630/ad4203
Abstract
Quantum mechanics has withstood every experimental test thus far. However, it relies on ad-hoc postulates which require experimental verification. Over the past decade there has been a great deal of research testing these postulates, with numerous tests of Born's rule for determining probabilities and the complex nature of the Hilbert space being carried out. Although these tests are yet to reveal any significant deviation from textbook quantum theory, it remains important to conduct such tests in different configurations and using different quantum states. Here we perform the first such test using coherent states of light in a three-arm interferometer combined with homodyne detection. Our proposed configuration requires additional assumptions, but allows us to use quantum states which exist in a larger Hilbert space compared to previous tests. For testing Born's rule, we find that the third order interference is bounded to be = 0.002 0.004 and for testing whether quantum mechanics is complex or not we find a Peres parameter of F = 1.0000 0.0003 (F = 1 corresponds to the expected complex quantum mechanics). We also use our experiment to test Glauber's theory of optical coherence.
11 pages, comments very welcome
References in corpus (19)
- Optimal metrology with programmable quantum sensors
- Underground test of gravity-related wave function collapse
- Present status and future challenges of non-interferometric tests of collapse models
- Approaching optimal entangling collective measurements on quantum computing platforms
- Quantum Connectivity of Space-Time and Gravitationally Induced Decorrelation of Entanglement
- Exotic Looped Trajectories of Photons in Three-Slit Interference
- Quartic quantum theory: an extension of the standard quantum mechanics
- Surpassing the no-cloning limit with a heralded hybrid linear amplifier for coherent states
- Efficient computation of the Nagaoka--Hayashi bound for multi-parameter estimation with separable measurements
- Three path interference using nuclear magnetic resonance: a test of the consistency of Born's rule
- Sensitive single-photon test of extended quantum theory with 2D hexagonal boron nitride
- Experimental Test of Born's Rule by Inspecting Third-Order Quantum Interference on a Single Spin in Solids
- Testing higher-order quantum interference with many-particle states
- A generalised multipath delayed-choice experiment on a large-scale quantum nanophotonic chip
- Fast self-testing Quantum Random Number Generator based on homodyne detection
- A high fidelity heralded squeezing gate
- Experimentally bounding deviations from quantum theory for a photonic three-level system using theory-agnostic tomography
- 12.6 dB squeezed light at 1550 nm from a bow-tie cavity for long-term high duty cycle operation
- Towards probing for hypercomplex quantum mechanics in a waveguide interferometer