Cavity Mediated Two-Qubit Gate: Tuning to Optimal Performance with NISQ Era Quantum Simulations
Shreekanth S. Yuvarajan, Vincent Iglesias-Cardinale, David Hucul, Herbert F. Fotso

TL;DR
This paper presents a quantum algorithm compatible with NISQ devices to simulate and optimize cavity-mediated two-qubit gates, identifying regimes of high fidelity across various system parameters for scalable quantum computing.
Contribution
It introduces a robust quantum simulation method for cavity-mediated two-qubit gates that can explore optimal performance regimes beyond traditional analytical and classical approaches.
Findings
Identifies effective two-qubit gate regimes with far-detuned qubits.
Demonstrates agreement with analytical and classical simulations.
Provides a tool for optimizing photon-mediated quantum operations.
Abstract
A variety of photon-mediated operations are critical to the realization of scalable quantum information processing platforms and their accurate characterization is essential for the identification of optimal regimes and their experimental realizations. Such light-matter interactions are often studied with a broad variety of analytical and computational methods that are constrained by approximation techniques or by computational scaling. Quantum processors present a new avenue to address these challenges. We consider the case of cavity mediated two-qubit gates. To investigate quantum state transfer between the qubits, we implement simulations with quantum circuits that are able to reliably track the dynamics of the system. Our quantum algorithm, compatible with NISQ (Noisy Intermediate Scale Quantum) era systems, allows us to map out the fidelity of the state transfer operation between…
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Taxonomy
TopicsQuantum Computing Algorithms and Architecture · Quantum Information and Cryptography · Neural Networks and Reservoir Computing
