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Native two-qubit gates in fixed-coupling, fixed-frequency transmons beyond cross-resonance interaction
- Source :
- PRX Quantum 5, 020338 2024
- Publication Year :
- 2023
-
Abstract
- Fixed-frequency superconducting qubits demonstrate remarkable success as platforms for stable and scalable quantum computing. Cross-resonance gates have been the workhorse of fixed-coupling, fixed-frequency superconducting processors, leveraging the entanglement generated by driving one qubit resonantly with a neighbor's frequency to achieve high-fidelity, universal CNOTs. Here, we use on-resonant and off-resonant microwave drives to go beyond cross-resonance, realizing natively interesting two-qubit gates that are not equivalent to CNOTs. In particular, we implement and benchmark native ISWAP, SWAP, $\sqrt{\text{ISWAP}}$, and BSWAP gates. Furthermore, we apply these techniques for an efficient construction of the B-gate: a perfect entangler from which any two-qubit gate can be reached in only two applications. We show these native two-qubit gates are better than their counterparts compiled from cross-resonance gates. We elucidate the resonance conditions required to drive each two-qubit gate and provide a novel frame tracking technique to implement them in Qiskit.<br />Comment: added new section, more data, improved presentation
- Subjects :
- Quantum Physics
Subjects
Details
- Database :
- arXiv
- Journal :
- PRX Quantum 5, 020338 2024
- Publication Type :
- Report
- Accession number :
- edsarx.2310.12146
- Document Type :
- Working Paper
- Full Text :
- https://doi.org/10.1103/PRXQuantum.5.020338