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Experimental Higher-Order Interference in a Nonlinear Triple Slit

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arxiv 2112.06965 v1 pith:35MKWZ6D submitted 2021-12-13 quant-ph

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keywords interferencehigher-ordernonlinearevolutionexperimentonlyopenorder
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Interference between two waves is a well-known concept in physics, and its generalization to more than two waves is straight-forward. The order of interference is defined as the number of paths that interfere in a manner that cannot be reduced to patterns of a lower order. In practice, second-order interference means that in, say, a triple-slit experiment, the interference pattern when all three slits are open can be predicted from the interference patterns between all possible pairs of slits. Quantum mechanics is often said to only exhibit second-order interference. However, this is only true under specific assumptions, typically single-particles undergoing linear evolution. Here we experimentally show that nonlinear evolution can in fact lead to higher-order interference. The higher-order interference in our experiment has a simple quantum mechanical description; namely, optical coherent states interacting in a nonlinear medium. Our work shows that nonlinear evolution could open a loophole for experiments attempting to verify Born's rule by ruling out higher-order interference.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Physical limits on information metrics and quantum gravity as gravitized quantum theory

    gr-qc 2025-04 reject novelty 3.0 of 10

    The authors argue that quantum gravity and general covariance force the information geometry of quantum theory to become dynamical, requiring a modified Born rule testable via triple-slit matter-wave interference.

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