Please use this identifier to cite or link to this item: http://hdl.handle.net/2289/6997
Title: Measuring the deviation from the superposition principle in interference experiments
Authors: Rengaraj, G
Prathwiraj, U.
Sahoo, Surya Narayan
Somashekar, R.
Sinha, Urbasi
Issue Date: 25-Jun-2018
Publisher: IOP Publishing Ltd on behalf of Deutsche Physikalische Gesellschaft
Citation: New Journal of Physics, 2018, Vol.20, p 063049
Abstract: The Feynman path integral formalism has long been used for calculations of probability amplitudes. Over the last few years, it has been extensively used to theoretically demonstrate that the usual application of the superposition principle in slit based interference experiments is often incorrect. This has caveat in both optics and quantum mechanics where it is often naively assumed that the boundary condition represented by slits opened individually is same as them being opened together. The correction term comes from exotic sub-leading terms in the path integral which can be described by what are popularly called non-classical paths. In this work, we report an experiment where we have a controllable parameter that can be varied in its contribution such that the effect due to these non-classical paths, which we will refer to as sub-leading paths, can be increased or diminished at will. Thus, the reality of these sub-leading paths is brought forth in a classical experiment using microwaves, thereby proving that the boundary condition effect being investigated transcends the classical-quantum divide and that the Feynman path integral formalism is an overarching framework. We report the first measurement of a deviation (as big as 6%) from the superposition principle in the microwave domain using antennas as sources and detectors of the electromagnetic waves. We also show that our results can have potential applications in astronomy.
Description: Open Access
URI: http://hdl.handle.net/2289/6997
ISSN: 1367-2630
Alternative Location: https://arxiv.org/abs/1610.09143
https://doi.org/10.1088/1367-2630/aac92c
Copyright: 2018 The Author(s)
Appears in Collections:Research Papers (LAMP)

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