Quantum Transduction: Enabling Quantum Networking
Marcello Caleffi, Laura d'Avossa, Xu Han, Angela Sara Cacciapuoti

TL;DR
This paper reviews the fundamental challenges of quantum transduction, a key technology enabling communication between different quantum hardware platforms, and introduces a communication framework for quantum networks.
Contribution
It provides a tutorial on quantum transduction challenges, categorizes transduction modalities, and presents a novel perspective on transducers as entanglement sources within quantum networks.
Findings
Categorization of transduction modalities
Introduction of a communication engineering framework
Proposal of transducers as entanglement sources
Abstract
The complementary features of different qubit platforms for computing and communicating impose an intrinsic hardware heterogeneity in any quantum network, where nodes, while processing and storing quantum information, must also communicate through quantum links. Indeed, one of the most promising hardware platforms at quantum node scale for scalable and fast quantum computing is the superconducting technology, which operates at microwave frequencies. Whereas, for communicating at distances of practical interest beyond few meters, quantum links should operate at optical frequencies. Therefore, to allow the interaction between superconducting and photonic technologies, a quantum interface, known as quantum transducer, able to convert one type of qubit to another is required. This paper aims to provide a tutorial treatise on the fundamental research challenges of quantum transduction. The…
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