22
collaborators
2012–2015
years active
Contributions
QIP QCrypt TQC talk poster presenter award · △program ◇steering ○organizing · filled = chair
2 Talks
| Title | Conference | Type | Co-authors |
|---|---|---|---|
| Quantum storage of entangled telecom-wavelength photons in an erbium-doped optical fiber | QCRYPT 2014 | regular | J. Jin, V. B. Verma, Matthew D. Shaw, Francesco Marsili, Sae Woo Nam, Daniel Oblak, Wolfgang Tittel |
| Frequency-multiplexed photon storage and read-out on demand using an atomic frequency comb-based quantum memory | QCRYPT 2012 | regular | Neil Sinclair, Hassan Mallahzadeh, Joshua A. Slater, Jeongwan Jin, Daniel Oblak, Mathew George, Raimund Ricken, Wolfgang Sohler, ▸Wolfgang Tittel |
2 Posters
| Title | Conference | Co-authors |
|---|---|---|
| A Multiplexed Light-matter Interface for Fibre-based Quantum Networks | QCRYPT 2015 | Marcel.Lí Grimau Puigibert, Qiang Zhou, Lambert Giner, Francesco Marsili, Varun Verma, Sae Woo Nam, Lee Oesterling, David Nippa, Daniel Oblak, Wolfgang Tittel |
| Long-distance quantum communications using quantum memories having on-demand recall in the frequency domain | QCRYPT 2013 | Neil Sinclair, Hassan Mallazadeh, Joshua A. Slater, Mathew George, Raimund Ricken, Morgan Hedges, Daniel Oblak, Wolfgang Sohler, Wolfgang Tittel |
If two parties were to exploit today’s quantum key distribution (QKD) systems, they would be limited to being at most ~100 km apart [1]. It is possible to overcome this limit with a quantum repeater that exploits quantum memories for qubit synchronization [1]. Among other criteria desired for quantum memories, simultaneous storage of multiple qubits (multiplexing) and recall of any desired qubit on-demand is required for a quantum repeater [1,2]. These properties are generally associated with the ability to trigger the re-emission of any previously stored qubit at a desired time [3]. We will argue that this view is too restricted, and that it is possible to build a quantum repeater using quantum memories that allow storage of frequency multiplexed qubits supplemented with frequency-selective read-out on demand. Furthermore we report on measurements exploiting the atomic frequency comb protocol in a Ti:Tm:LiNbO3 waveguide cooled to 3 K [4,5] that shows the required on-demand readout with average fidelities of 0.95 ± 0.03 thereby significantly violating the maximum fidelity of 0.67 possible using a classical memory. Our demonstration constitutes an important step towards the development of a quantum repeater. [1] N. Sangouard et al., Reviews of Modern Physics 83, 33 (2011). [2] A. I. Lvovsky, W. Tittel, and B.C. Sanders, Nature Photonics 3, 706 (2009). [3] C. Simon et al., Phys. Rev. Lett. 98, 190503 (2007). [4] M. Afzelius et al., Phys. Rev. A 79, 052329 (2009). [5] E. Saglamyurek et al., Nature 469, 512 (2011). |
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Collaborators
| Co-author | Joint talks |
|---|---|
| Daniel Oblak | 4 |
| Wolfgang Tittel | 4 |
| Francesco Marsili | 2 |
| Joshua A. Slater | 2 |
| Mathew George | 2 |
| Neil Sinclair | 2 |
| Raimund Ricken | 2 |
| Sae Woo Nam | 2 |
| Wolfgang Sohler | 2 |
| David Nippa | 1 |
| Hassan Mallahzadeh | 1 |
| Hassan Mallazadeh | 1 |
| J. Jin | 1 |
| Jeongwan Jin | 1 |
| Lambert Giner | 1 |
| Lee Oesterling | 1 |
| Marcel.Lí Grimau Puigibert | 1 |
| Matthew D. Shaw | 1 |
| Morgan Hedges | 1 |
| Qiang Zhou | 1 |