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20242026
most citedSqueezing, trisqueezing, and quadsqueezing in a spin-oscillator system

1 citations · 2 across the 4 of their papers we have counts for

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quant-ph2026

Error Correction in a Distributed Quantum Computer

E. M. Ainley, A. Agrawal, T. Araki +12

Building fault-tolerant quantum computers with large numbers of logical qubits requires both scalable hardware architectures and error-correcting codes that make efficient use of p…

quant-ph2026

Quantum Nonlocal Games on Graph Ensembles

Joshua Tucker, Chris Weeks, Peter Drmota +11

Quantum entanglement is one of the most striking discoveries in all of science. This effect allows, for instance, two spatially separated agents to coordinate their actions, withou…

quant-ph2025

Multipartite Mixed-Species Entanglement over a Quantum Network

D. Main, P. Drmota, E. M. Ainley +9

We generate multipartite entangled states of two, three and four matter qubits, where the entanglement is distributed over macroscopic distances via a photonic network link. Trappe…

quant-ph20241 cited

Multipartite Entanglement for Multi-node Quantum Networks

E. M. Ainley, A. Agrawal, D. Main +5

Scaling the number of entangled nodes in a quantum network is a challenge with significant implications for quantum computing, clock synchronisation, secure communications, and qua…

quant-ph2024

Distributed Quantum Computing across an Optical Network Link

D. Main, P. Drmota, D. P. Nadlinger +6

Distributed quantum computing (DQC) combines the computing power of multiple networked quantum processing modules, enabling the execution of large quantum circuits without compromi…

quant-ph2024

Experimental Quantum Advantage in the Odd-Cycle Game

P. Drmota, D. Main, E. M. Ainley +7

We report the first experimental demonstration of the odd-cycle game. We entangle two ions separated by ~2 m and the players use them to win the odd-cycle game with a probability ~…