Creating heralded hyper-entangled photons using Rydberg atoms

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作者
Sutapa Ghosh
Nicholas Rivera
Gadi Eisenstein
Ido Kaminer
机构
[1] Andrew and Erna Viterby Department of Electrical Engineering and Russell Berrie Nanotechnology Institute,Department of Physics
[2] Technion-Israel Institute of Technology,undefined
[3] Massachusetts Institute of Technology,undefined
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Light: Science & Applications | / 10卷
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摘要
Entangled photon pairs are a fundamental component for testing the foundations of quantum mechanics, and for modern quantum technologies such as teleportation and secured communication. Current state-of-the-art sources are based on nonlinear processes that are limited in their efficiency and wavelength tunability. This motivates the exploration of physical mechanisms for entangled photon generation, with a special interest in mechanisms that can be heralded, preferably at telecommunications wavelengths. Here we present a mechanism for the generation of heralded entangled photons from Rydberg atom cavity quantum electrodynamics (cavity QED). We propose a scheme to demonstrate the mechanism and quantify its expected performance. The heralding of the process enables non-destructive detection of the photon pairs. The entangled photons are produced by exciting a rubidium atom to a Rydberg state, from where the atom decays via two-photon emission (TPE). A Rydberg blockade helps to excite a single Rydberg excitation while the input light field is more efficiently collectively absorbed by all the atoms. The TPE rate is significantly enhanced by a designed photonic cavity, whose many resonances also translate into high-dimensional entanglement. The resulting high-dimensionally entangled photons are entangled in more than one degree of freedom: in all of their spectral components, in addition to the polarization—forming a hyper-entangled state, which is particularly interesting in high information capacity quantum communication. We characterize the photon comb states by analyzing the Hong-Ou-Mandel interference and propose proof-of-concept experiments.
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  • [31] Diddams SA(2008)Breaking the communication barrier Nat. Phys. 4 090503-449
  • [32] Vahala K(2018)Beating the channel capacity limit for superdense coding with entangled ququarts Sci. Adv. 4 109-479
  • [33] Udem T(2015)Harnessing high-dimensional hyperentanglement through a biphoton frequency comb Nat. Photonics 9 032322-1682
  • [34] Steinlechner F(2020)Efficient generation of high-dimensional entanglement through multipath down-conversion Phys. Rev. Lett. 125 738-2448
  • [35] Cozzolino D(2014)Wavelength-multiplexed quantum networks with ultrafast frequency combs Nat. Photonics 8 516-809
  • [36] Kues M(2013)Shaping frequency-entangled qudits Phys. Rev. A 88 365-331
  • [37] Barreiro JT(2017)Distribution of high-dimensional entanglement via an intra-city free-space link Nat. Commun. 8 032307-645
  • [38] Wei TC(2020)Efficient distribution of high-dimensional entanglement through 11 km fiber Optica 7 115-685
  • [39] Kwiat PG(2015)Quantum teleportation of multiple degrees of freedom of a single photon Nature 518 041010-236
  • [40] Walborn SP(2020)Advances in high-dimensional quantum entanglement Nature Rev. Phys. 2 2208-2140