Open-access Probing the quantum-classical boundary with optical beam splitters

Abstract

This study explores how optical beam splitters provide a conceptual and operational link between classical and quantum descriptions of light. In the classical picture, they are modeled through energy-conserving field amplitudes and a four-port scattering matrix, which successfully explain interference in systems such as Michelson and Mach–Zehnder interferometers. Moving to the quantum domain, the field amplitudes are replaced by bosonic creation and annihilation operators that obey the Weyl–Heisenberg algebra. Using the Glauber displacement operator, we define coherent states whose expectation values reproduce classical monochromatic fields while exhibiting Poissonian photon statistics. This unified approach shows that beam splitters diagnose the nature of incident light: coherent states yield classical interference, while indistinguishable single-photons reveal quantum signatures such as antibunching and Hong–Ou–Mandel interference. The analysis relies on operator formalism and correlation functions that capture both average-field behavior and nonclassical statistics. As beam-splitting technologies transition from bulk optics to integrated photonics and metasurfaces, this framework offers a consistent basis for modeling optical circuits across the classical-quantum divide. By highlighting the dual role of the beam splitter as a passive device and a quantum probe, we emphasize its importance for quantum optics, quantum information, and hybrid photonic platforms.

Keywords:
Beam splitter; quantum optics; coherent states; Glauber formalism; classical-quantum transition.


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Sociedade Brasileira de Física - SBF Rua do Matão, travessa R, 187 - Edifício Sede - Cidade Universitária, São Paulo, SP, Brasil, CEP 05508-090, Tel: +55 (11) 3034-0429 - São Paulo - SP - Brazil
E-mail: rbef@sbfisica.org.br, marcellof@unb.br
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