Sven Höfling

Extending Quantum Links: Modules for Fiber- and Memory-Based Quantum Repeaters

Peter van Loock [1], Wolfgang Alt [2], Christoph Becher [3], Oliver Benson [4], Holger Boche [5], Christian Deppe [6], Jürgen Eschner, Sven Höfling, Dieter Meschede [2], Peter Michler [7], Frank Schmidt [1], Harald Weinfurter [8]

Abstract

We analyze elementary building blocks for quantum repeaters based on fiber channels and memory stations. Implementations are considered for three different physical platforms, for which suitable components are available: quantum dots, trapped atoms and ions, and color centers in diamond. We evaluate and compare the performances of basic quantum repeater links for these platforms both for present-day, state-of-the-art experimental parameters as well as for parameters that could in principle be reached in the future. The ultimate goal is to experimentally explore regimes at intermediate distances, up to a few 100 km, in which the repeater-assisted secret key transmission rates exceed the maximal rate achievable via direct transmission. We consider two different protocols, one of which is better adapted to the higher source clock rate and lower memory coherence time of the quantum dot platform, while the other circumvents the need of writing photonic quantum states into the memories in a heralded, non-destructive fashion. The elementary building blocks and protocols can be connected in a modular form to construct a quantum repeater system that is potentially scalable to large distances.

On-demand semiconductor single-photon source with near-unity indistinguishability

Yu-Ming He [1], Yu He [1], Yu-Jia Wei [1], Dian Wu [1,2], Mete Atatüre, Christian Schneider [3], Sven Höfling, Martin Kamp [3], Chao-Yang Lu [1,2], Jian-Wei Pan [1]

Abstract

Single photon sources based on semiconductor quantum dots offer distinct advantages for quantum information, including a scalable solid-state platform, ultrabrightness, and interconnectivity with matter qubits. A key prerequisite for their use in optical quantum computing and solid-state networks is a high level of efficiency and indistinguishability. Pulsed resonance fluorescence (RF) has been anticipated as the optimum condition for the deterministic generation of high-quality photons with vanishing effects of dephasing. Here, we generate pulsed RF single photons on demand from a single, microcavity-embedded quantum dot under s-shell excitation with 3-ps laser pulses. The pi-pulse excited RF photons have less than 0.3% background contributions and a vanishing two-photon emission probability. Non-postselective Hong-Ou-Mandel interference between two successively emitted photons is observed with a visibility of 0.97(2), comparable to trapped atoms and ions. Two single photons are further used to implement a high-fidelity quantum controlled-NOT gate.