Programmable heralded linear optical generation of two-qubit states
Suren A. Fldzhyan, Mikhail Yu. Saygin, Sergei P. Kulik

TL;DR
This paper explores programmable linear optical schemes for heralded two-qubit state generation, comparing their efficiencies based on entanglement levels and resource requirements, and proposing optimized minimal configurations.
Contribution
It introduces new heralding schemes for two-qubit state generation using minimal photons and provides optimized configurations with reduced resource needs.
Findings
One-mode heralding is more efficient for highly-entangled states.
Two-mode heralding performs better for weakly-entangled states.
The proposed minimal scheme uses a single variable phase shift.
Abstract
We have investigated the heralded generation of two-qubit dual-rail-encoded states by programmable linear optics. Two types of schemes generating the states from four single photons, which is the minimal possible to accomplish the task, have been considered. The schemes have different detection patterns heralding successful generation events, namely, one-mode heralding, in which the two auxiliary photons are detected in one mode, and two-mode heralding, in which single photons are detected in each of the two modes simultaneously. We have shown that the dependence of the schemes' success probabilities on the target state's degree of entanglement are essentially different. In particular, one-mode heralding yields better efficiency for highly-entangled states, if the programmable interferometers can explore the full space of the unitary transfer matrices,. It is reversed in case of…
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Taxonomy
TopicsNeural Networks and Reservoir Computing · Optical Network Technologies · Photonic and Optical Devices
