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Coherent metamaterial absorption of two-photon states with 40% efficiency

Ashley Lyons, Dikla Oren, Thomas Roger, Vassili Savinov, João Valente, Stefano Vezzoli, Nikolay I. Zheludev, Mordechai Segev, and Daniele Faccio
Phys. Rev. A 99, 011801(R) – Published 14 January 2019
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Abstract

Multiphoton absorption processes have a nonlinear dependence on the amplitude of the incident optical field, i.e., the number of photons. However, multiphoton absorption is generally weak and multiphoton events occur with extremely low probability. Consequently, it is extremely challenging to engineer quantum nonlinear devices that operate at the single photon level and the majority of quantum technologies have to rely on single photon interactions. Here we demonstrate experimentally and theoretically that exploiting coherent absorption of N=2 NOON states makes it possible to enhance the number of two-photon states that are absorbed by at most a factor of 2 with respect to a linear absorption process. An absorbing metasurface placed inside a Sagnac-style interferometer into which we inject an N=2 NOON state, exhibits two-photon absorption with 40.5% efficiency, close to the theoretical maximum. This high probability of simultaneous absorption of two photons holds the promise for applications in fields that require multiphoton upconversion but are hindered by high peak intensities.

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  • Received 29 August 2018

DOI:https://doi.org/10.1103/PhysRevA.99.011801

©2019 American Physical Society

Physics Subject Headings (PhySH)

Atomic, Molecular & Optical

Authors & Affiliations

Ashley Lyons1,2,*, Dikla Oren3,*, Thomas Roger2, Vassili Savinov4, João Valente4,5, Stefano Vezzoli2, Nikolay I. Zheludev4, Mordechai Segev3, and Daniele Faccio1,2,†

  • 1School of Physics and Astronomy, University of Glasgow, Glasgow, G12 8QQ, United Kingdom
  • 2School of Engineering and Physical Sciences, Heriot-Watt University, Edinburgh, EH14 4AS, United Kingdom
  • 3Physics Department and Solid State Institute, Technion, 32000 Haifa, Israel
  • 4Optoelectronics Research Centre & Centre for Photonic Metamaterials, University of Southampton, Southampton SO17 1BJ, United Kingdom
  • 5School of Engineering, University of Glasgow, Glasgow, G12 8QQ, United Kingdom

  • *These authors have contributed equally to this work.
  • daniele.faccio@glasgow.ac.uk

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Issue

Vol. 99, Iss. 1 — January 2019

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