Globally driven superconducting quantum computing architecture
arXiv:2407.01182 · doi:10.1103/PhysRevResearch.7.L012065
Abstract
We propose a platform for implementing a universal, globally driven quantum computer based on a 2D ladder hosting three different species of superconducting qubits. In stark contrast with the existing literature, our scheme exploits the always-on longitudinal ZZ coupling. The latter, combined with specific driving frequencies, enables the reach of a blockade regime, which plays a pivotal role in the computing scheme.
Published version in Phys. Rev. Research., typo corrected in the SM
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Cited by in corpus (5)
- Charging a quantum spin network towards Heisenberg-limited precision
- Topological order in symmetric blockade structures
- Overcoming disorder in superconducting globally driven quantum computing
- Building globally controlled quantum processors with ZZ interactions
- Orthogonal frequency-division multiplexing for simultaneous gate operations on multiple qubits via a shared control line