Efficient and reversible optical-to-spin conversion for solid-state quantum memories
Jingjing Chen, Mikael Afzelius

TL;DR
This paper demonstrates highly efficient, reversible optical-to-spin conversion in a solid-state quantum memory using Eu-doped Y2SiO5, enabling long-duration photon storage with up to 96% efficiency.
Contribution
It introduces a modeling and measurement approach for reversible optical-to-spin conversion in Eu-doped Y2SiO5, achieving record efficiency and long storage times.
Findings
Achieved up to 96% efficiency in optical-to-spin conversion.
Demonstrated storage of quantum states for 500 microseconds.
Optimized conversion using a new simulation tool.
Abstract
Long-duration and efficient quantum memories for photons are key components of quantum repeater and network applications. To achieve long duration storage in atomic systems, a short-lived optical coherence can be mapped into a long-lived spin coherence, which is the basis for many quantum memory schemes. In this work, we present modeling and measurements of the back-and-forth, i.e. reversible, optical-to-spin conversion for an atomic frequency comb memory. The AFC memory is implemented in with an applied magnetic field of 231 mT, which allows lifting Zeeman transition degeneracy which otherwise cause time-domain interference in the optical-to-spin conversion. By optimizing the conversion using the developed simulation tool, we achieve a total efficiency of up to 96%, including the spin echo sequence and spin dephasing, for a storage…
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Taxonomy
TopicsQuantum optics and atomic interactions · Neural Networks and Reservoir Computing · Magneto-Optical Properties and Applications
