Nonlinear optics using intense optical coherent state superpositions

Fuente: arXiv
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Main Authors: Lamprou, Theocharis, Rivera-Dean, Javier, Stammer, Philipp, Lewenstein, Maciej, Tzallas, Paraskevas
Format: Preprint
Published: 2023
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author Lamprou, Theocharis
Rivera-Dean, Javier
Stammer, Philipp
Lewenstein, Maciej
Tzallas, Paraskevas
author_facet Lamprou, Theocharis
Rivera-Dean, Javier
Stammer, Philipp
Lewenstein, Maciej
Tzallas, Paraskevas
contents Superpositions of coherent light states, are vital for quantum technologies. However, restrictions in existing state preparation and characterization schemes, in combination with decoherence effects, prevent their intensity enhancement and implementation in nonlinear optics. Here, by developing a decoherence--free approach, we generate intense femtosecond--duration infrared coherent state superpositions (CSS) with a mean photon number orders of magnitude higher than the existing CSS sources. We utilize them in nonlinear optics to drive the second harmonic generation process in an optical crystal. We experimentally and theoretically show that the non--classical nature of the intense infrared CSS is imprinted in the second-order autocorrelation traces. Additionally, theoretical analysis shows that the quantum features of the infrared CSS are also present in the generated second harmonic. The findings introduce the optical CSS into the realm of nonlinear quantum optics, opening up new paths in quantum information science and quantum light engineering by creating non-classical light states in various spectral regions via non-linear up-conversion processes.
format Preprint
id arxiv_https___arxiv_org_abs_2306_14480
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Nonlinear optics using intense optical coherent state superpositions
Lamprou, Theocharis
Rivera-Dean, Javier
Stammer, Philipp
Lewenstein, Maciej
Tzallas, Paraskevas
Quantum Physics
Optics
Superpositions of coherent light states, are vital for quantum technologies. However, restrictions in existing state preparation and characterization schemes, in combination with decoherence effects, prevent their intensity enhancement and implementation in nonlinear optics. Here, by developing a decoherence--free approach, we generate intense femtosecond--duration infrared coherent state superpositions (CSS) with a mean photon number orders of magnitude higher than the existing CSS sources. We utilize them in nonlinear optics to drive the second harmonic generation process in an optical crystal. We experimentally and theoretically show that the non--classical nature of the intense infrared CSS is imprinted in the second-order autocorrelation traces. Additionally, theoretical analysis shows that the quantum features of the infrared CSS are also present in the generated second harmonic. The findings introduce the optical CSS into the realm of nonlinear quantum optics, opening up new paths in quantum information science and quantum light engineering by creating non-classical light states in various spectral regions via non-linear up-conversion processes.
title Nonlinear optics using intense optical coherent state superpositions
topic Quantum Physics
Optics
url https://arxiv.org/abs/2306.14480