Towards a quantum interface between telecommunication and UV wavelengths: design and classical performance
arXiv:1507.08802 · doi:10.1007/s00340-016-6325-z
Abstract
We propose and characterize a quantum interface between telecommunication wavelengths (1311 nm) and an Yb-dipole transition (369.5 nm) based on a second order sum frequency process in a PPKTP waveguide. An external (internal) conversion efficiency above 5% (10%) is shown using classical bright light.
References in corpus (5)
- The Quantum Internet
- Visible-to-telecom quantum frequency conversion of light from a single quantum emitter
- Two-photon interference using background-free quantum frequency conversion of single photons from a semiconductor quantum dot
- Single-mode optical fiber for high-power, low-loss UV transmission
- Generation of entangled matter qubits in two opposing parabolic mirrors
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