English

A telecom-wavelength atomic quantum memory in optical fiber for heralded polarization qubits

Quantum Physics 2015-10-07 v1 Atomic Physics Optics

Abstract

Photon-based quantum information processing promises new technologies including optical quantum computing, quantum cryptography, and distributed quantum networks. Polarization-encoded photons at telecommunication wavelengths provide a compelling platform for practical realization of these technologies. However, despite important success towards building elementary components compatible with this platform, including sources of entangled photons, efficient single photon detectors, and on-chip quantum circuits, a missing element has been atomic quantum memory that directly allows for reversible mapping of quantum states encoded in the polarization degree of a telecom-wavelength photon. Here we demonstrate the quantum storage and retrieval of polarization states of heralded single-photons at telecom-wavelength by implementing the atomic frequency comb protocol in an ensemble of erbium atoms doped into an optical fiber. Despite remaining limitations in our proof-of-principle demonstration such as small storage efficiency and storage time, our broadband light-matter interface reveals the potential for use in future quantum information processing.

Keywords

Cite

@article{arxiv.1506.04431,
  title  = {A telecom-wavelength atomic quantum memory in optical fiber for heralded polarization qubits},
  author = {Jeongwan Jin and Erhan Saglamyurek and Marcel. li Grimau Puigibert and Varun B. Verma and Francesco Marsili and Sae Woo Nam and Daniel Oblak and Wolfgang Tittel},
  journal= {arXiv preprint arXiv:1506.04431},
  year   = {2015}
}

Comments

The first two authors contributed equally to this work

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