arXiv · 2610.08445
Quantifying the fidelity of a quantum memory
Abstract
Quantum memories are key ingredients for future quantum networks. Developing methods for their certification is therefore an important, yet challenging, problem. In this work, we present a general framework for certifying quantum memories and quantifying their performance in an operational and efficient manner, taking advantage of developments in the theory of quantum channels. We start by giving a pedagogical introduction to these concepts and tools and illustrate their natural application to quantum memories. Specifically, we quantify the fidelity of a quantum memory via the notion of average channel fidelity, which can be estimated precisely in an experiment via a finite set of probe states forming a so-called $2$-design. We then present a number of witnessing techniques for certifying this quantity, and show that it gives access to other important properties of the channel, such as its dimensionality and its capacity to transmit quantum information. We consider mostly a simple prepare-and-measure scenario, but discuss also the case of an entanglement-based setup, as well as a semi-device-independent approach. Finally, we apply these methods to a solid-state quantum memory experiment, certifying an average channel fidelity of 98.6%. Our certification methods can be readily applied to other quantum devices, such as fibers, transducers and gates.
Explore related subjects
Keep this discovery
Explore connections, maps & timelines
Victor Barizien, Sophie Egelhaaf, Angelo Gelmini Rodriguez, Louis Nicolas, Théo Sanchez Mejia, Mikael Afzelius, Pavel Sekatski, Nicolas Brunner. 2026-10-06. Quantifying the fidelity of a quantum memory. https://arxiv.org/abs/2610.08445
Cite the original work for its findings. Save a collection to share your selection of sources.