Synthesizing three-body interaction of spin chirality with superconducting qubits
Abstract
Superconducting qubits provide a competitive platform for quantum simulation of complex dynamics that lies at the heart of quantum many-body systems, because of the flexibility and scalability afforded by the nature of microfabrication. However, in a multiqubit device, the physical form of couplings between qubits is either an electric (capacitor) or magnetic field (inductor), and the associated quadratic field energy determines that only two-body interaction in the Hamiltonian can be directly realized. Here we propose and experimentally synthesize the three-body spin-chirality interaction in a superconducting circuit based on Floquet engineering. By periodically modulating the resonant frequencies of the qubits connected with each other via capacitors, we can dynamically turn on and off qubit-qubit couplings, and further create chiral flows of the excitations in the three-qubit circular loop. Our result is a step toward engineering dynamical and many-body interactions in multiqubit superconducting devices, which potentially expands the degree of freedom in quantum simulation tasks.
Cite
@article{arxiv.2002.01951,
title = {Synthesizing three-body interaction of spin chirality with superconducting qubits},
author = {Wuxin Liu and Wei Feng and Wenhui Ren and Da-Wei Wang and Haohua Wang},
journal= {arXiv preprint arXiv:2002.01951},
year = {2020}
}
Comments
Main text: 5 pages, 4 figures; Supplementary: 3 pages, 1 figure. The following article has been accepted by Applied Physics Letters. After it is published, it will be found at Link