Quantum information preserving computational electromagnetics

Dong-Yeop Na, Jie Zhu, Weng C. Chew, and Fernando L. Teixeira
Phys. Rev. A 102, 013711 – Published 13 July 2020

Abstract

We present a computational framework for canonical quantization in arbitrary inhomogeneous dielectric media by incorporating quantum electromagnetic effects into complex solutions of quantum Maxwell's equations. To do so, the proposed algorithm integrates and performs (1) numerical computation of normal modes and (2) evaluation of arbitrary products of ladder operators acting on multimode Fock states. The former is associated with Hermitian-Helmholtz linear systems using finite-element or finite-difference methods; consequently, the complete set of numerical normal modes diagonalizes the Hamiltonian operators up to floating-point precision. Its Hermiticity is retained, allowing its quantization. Then, we perform quantum numerical simulations of two-photon interference occurring in a 50:50 beam splitter to observe the Hong-Ou-Mandel effect. Our prototype model is useful for numerical analyses on various narrow-band quantum-optical multiphoton systems such as quantum metasurfaces, quantum-optical filters, and quantum electrodynamics in open optical cavities.

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  • Received 24 August 2019
  • Accepted 18 May 2020

DOI:https://doi.org/10.1103/PhysRevA.102.013711

©2020 American Physical Society

Physics Subject Headings (PhySH)

  1. Research Areas
Quantum Information, Science & Technology

Authors & Affiliations

Dong-Yeop Na, Jie Zhu, and Weng C. Chew*

  • School of Electrical and Computer Engineering, Purdue University, West Lafayette, Indiana 47906, USA

Fernando L. Teixeira

  • ElectroScience Laboratory and Department of Electrical and Computer Engineering, The Ohio State University, Columbus, Ohio 43212, USA

  • *wcchew@purdue.edu

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Vol. 102, Iss. 1 — July 2020

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