Native Conditional $i$SWAP Operation with Superconducting Artificial Atoms
Abstract
Controlling the flow of quantum information is a fundamental task for quantum computers, which is unfeasible to realize on classical devices. Coherent devices which can process quantum states are thus required to route the quantum states that encode information. In this paper we demonstrate experimentally the smallest quantum transistor with a superconducting quantum processor which is composed of a collector qubit, an emitter qubit, and a coupler (transistor gate). The interaction strength between the collector and emitter qubits is controlled by the frequency and state of the coupler, effectively implementing a quantum switch. Through the coupler-state-dependent Heisenberg (inherent) interaction between the qubits, a single-step (native) conditional SWAP operation can be applied. To this end, we find that it is important to take into consideration higher energy level for achieving a native and high-fidelity transistor operation. By reconstructing the Quantum Process Tomography, we obtain an operation fidelity of when the transistor gate is open (SWAP implementation) and in the case of closed gate (identity gate implementation). The architecture has strong potential in quantum information processing applications with superconducting qubits.
Cite
@article{arxiv.2203.09791,
title = {Native Conditional $i$SWAP Operation with Superconducting Artificial Atoms},
author = {Chang-Kang Hu and Jiahao Yuan and Bruno A. Veloso and Jiawei Qiu and Yuxuan Zhou and Libo Zhang and Ji Chu and Orkesh Nurbolat and Ling Hu and Jian Li and Yuan Xu and Youpeng Zhong and Song Liu and Fei Yan and Dian Tan and R. Bachelard and Alan C. Santos and C. J. Villas-Boas and Dapeng Yu},
journal= {arXiv preprint arXiv:2203.09791},
year = {2023}
}
Comments
10 pages and 6 figures, including Appendix Section