Abstract

The availability of photon states with well-defined temporal modes is crucial for photonic quantum technologies. Ever since the inception of generating photonic quantum states through pulse pumped spontaneous parametric processes, many exquisite efforts have been put on improving the modal purity of the photon states to achieve single-mode operation. However, because the nonlinear interaction and linear dispersion are often mixed in parametric processes, limited successes have been achieved so far only at some specific wavelengths with sophisticated design. In this paper, we resort to a different approach by exploiting an active filtering mechanism originated from interference fringe of nonlinear interferometer. The nonlinear interferometer is realized in a sequential array of nonlinear medium, with a gap in between made of a linear dispersive medium, in which the precise modal control is realized without influencing the phase matching of the parametric process. As a proof-of-principle demonstration of the capability, we present a photon pairs source using a two-stage nonlinear interferometer formed by two identical nonlinear fibers with a standard single mode fiber in between. The results show that spectrally correlated two-photon state via four wave mixing in a single piece nonlinear fiber is modified into factorable state and heralded single-photons with high modal purity and high heralding efficiency are achievable. This novel quantum interferometric method, which can improve the quality of the photon states in almost all the aspects such as modal purity, heralding efficiency, and flexibility in wavelength selection, is proved to be effective and easy to realize.

Highlights

  • High quality photonic quantum states are essential resource for fundamental test of quantum mechanics and for quantum information [1,2,3,4]

  • We propose a novel interferometric method to engineer the joint spectral function of a two-photon state generated from pulse pumped spontaneous parametric emission

  • As a proof-of principle demonstration, we successfully modify an originally un-factorized joint spectral function (JSF) from spontaneous four-wave mixing (SFWM) in one piece of dispersion shifted fiber to a nearly factorized JSF by using a two-stage nonlinear interferometer (NLI) formed by two identical dispersion shifted fibers with a standard single mode fiber in between

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Summary

Introduction

High quality photonic quantum states are essential resource for fundamental test of quantum mechanics and for quantum information [1,2,3,4]. The photons generated from these processes are of multi-mode nature [15, 16] This diminishes quantum interference effects and prevents optical QIP protocols from achieving desired goals. There are two approaches for combating the temporal indistinguishability issue: one is to use a narrow band two-photon source so that photo-detectors are fast enough to resolve the arrival of photons [17]; the other is to engineer the spectrum of spontaneous parametric processes to achieve single mode operation [11, 15, 16, 18].

Theoretical analysis and simulation results
Non-NLI case
Experimental implementation and results
Findings
Discussion
Conclusion
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