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Is a Single Photon Always Circularly Polarized? A Proposed Experiment using a Superconducting Microcalorimeter Photon Detector

Superconductivity 2014-07-11 v1 Optics Quantum Physics

Abstract

A single photon is well known to have spin S = hbar, which would correspond to circular polarization, and all quantum transitions with photon absorption or emission correspond to DeltaS = +/-hbar. However, it is also widely believed that a single photon may be linearly polarized, which would correspond to a state with S = 0. Indeed, linearly polarized single photons are central to most quantum entanglement experiments. On the contrary, it has recently been suggested (based on a realistic spin-quantized wave picture of quantum states) that a linearly polarized photon state must be a superposition of a pair of circularly polarized photons, each with S = +/-hbar. This question cannot be resolved using a conventional photon detector, which generally cannot distinguish one photon from two simultaneous photons. However, it can be addressed using a superconducting microcalorimeter detector with sub-eV energy resolution and high quantum efficiency (QE). A careful experiment demonstrating this photon pairing could place in question some of the paradoxical central foundations of modern quantum theory, including quantum entanglement and nonlocality.

Keywords

Cite

@article{arxiv.1407.2605,
  title  = {Is a Single Photon Always Circularly Polarized? A Proposed Experiment using a Superconducting Microcalorimeter Photon Detector},
  author = {Alan M. Kadin and Steven B. Kaplan},
  journal= {arXiv preprint arXiv:1407.2605},
  year   = {2014}
}

Comments

6 pages, 5 figures. Submitted to special issue on Superconducting Quantum Electronics of the IEEE Journal on Selected Topics in Quantum Electronics, June 1, 2014