Quantum nondemolition measurements with optical parametric amplifiers for ultrafast universal quantum information processing
Ryotatsu Yanagimoto, Rajveer Nehra, Ryan Hamerly, Edwin Ng, Alireza, Marandi, Hideo Mabuchi

TL;DR
This paper proposes a novel optical parametric amplifier-based method for quantum nondemolition photon-number measurements, enabling ultrafast, scalable quantum information processing with potential for fault-tolerance and state engineering.
Contribution
It introduces a nonlinear-optical approach using quadratic interactions for PNR QND, facilitating deterministic state generation and measurement in continuous-variable quantum systems.
Findings
Proposes a phase-mismatched optical parametric amplifier for QND measurements.
Demonstrates how pump displacements encode photon-number information.
Shows potential for near-term implementation in nanophotonics.
Abstract
Realization of a room-temperature ultra-fast photon-number-resolving (PNR) quantum nondemolition (QND) measurement would have significant implications for photonic quantum information processing (QIP), enabling, e.g., deterministic quantum computation in discrete-variable architectures, but the requirement for strong coupling has hampered the development of scalable implementations. In this work, we propose and analyze a nonlinear-optical route to PNR QND using quadratic (i.e., ) nonlinear interactions. We show that the coherent pump field driving a phase-mismatched optical parametric amplifier (OPA) experiences displacements conditioned on the number of signal Bogoliubov excitations. A measurement of the pump displacement thus provides a QND measurement of the signal Bogoliubov excitations, projecting the signal mode to a squeezed photon-number state. We then show how our…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum optics and atomic interactions · Laser-Matter Interactions and Applications
