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| Main Authors: | , , , , , , , , , , |
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| Format: | Preprint |
| Published: |
2024
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| Subjects: | |
| Online Access: | https://arxiv.org/abs/2407.13321 |
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| _version_ | 1866909261594886144 |
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| author | Chen, Changling Tang, Kai Zhou, Yuxuan Yi, KangYuan Zhang, Xuan Zhang, Xu Guo, Haosheng Liu, Song Chen, Yuanzhen Yan, Tongxing Yu, Dapeng |
| author_facet | Chen, Changling Tang, Kai Zhou, Yuxuan Yi, KangYuan Zhang, Xuan Zhang, Xu Guo, Haosheng Liu, Song Chen, Yuanzhen Yan, Tongxing Yu, Dapeng |
| contents | Generation and preservation of quantum entanglement are among the primary tasks in quantum information processing. State stabilization via quantum bath engineering offers a resource-efficient approach to achieve this objective. However, current methods for engineering dissipative channels to stabilize target entangled states often require specialized hardware designs, complicating experimental realization and hindering their compatibility with scalable quantum computation architectures. In this work, we propose and experimentally demonstrate a stabilization protocol readily implementable in the mainstream integrated superconducting quantum circuits. The approach utilizes a Raman process involving a resonant (or nearly resonant) superconducting qubit array and their dedicated readout resonators to effectively emerge nonlocal dissipative channels. Leveraging individual controllability of the qubits and resonators, the protocol stabilizes two-qubit Bell states with a fidelity of $90.7\%$, marking the highest reported value in solid-state platforms to date. Furthermore, by extending this strategy to include three qubits, an entangled $W$ state is achieved with a fidelity of $86.2\%$, which has not been experimentally investigated before. Notably, the protocol is of practical interest since it only utilizes existing hardware common to standard operations in the underlying superconducting circuits, thereby facilitating the exploration of many-body quantum entanglement with dissipative resources. |
| format | Preprint |
| id |
arxiv_https___arxiv_org_abs_2407_13321 |
| institution | arXiv |
| publishDate | 2024 |
| record_format | arxiv |
| spellingShingle | Hardware-Efficient Stabilization of Entanglement via Engineered Dissipation in Superconducting Circuits Chen, Changling Tang, Kai Zhou, Yuxuan Yi, KangYuan Zhang, Xuan Zhang, Xu Guo, Haosheng Liu, Song Chen, Yuanzhen Yan, Tongxing Yu, Dapeng Quantum Physics Generation and preservation of quantum entanglement are among the primary tasks in quantum information processing. State stabilization via quantum bath engineering offers a resource-efficient approach to achieve this objective. However, current methods for engineering dissipative channels to stabilize target entangled states often require specialized hardware designs, complicating experimental realization and hindering their compatibility with scalable quantum computation architectures. In this work, we propose and experimentally demonstrate a stabilization protocol readily implementable in the mainstream integrated superconducting quantum circuits. The approach utilizes a Raman process involving a resonant (or nearly resonant) superconducting qubit array and their dedicated readout resonators to effectively emerge nonlocal dissipative channels. Leveraging individual controllability of the qubits and resonators, the protocol stabilizes two-qubit Bell states with a fidelity of $90.7\%$, marking the highest reported value in solid-state platforms to date. Furthermore, by extending this strategy to include three qubits, an entangled $W$ state is achieved with a fidelity of $86.2\%$, which has not been experimentally investigated before. Notably, the protocol is of practical interest since it only utilizes existing hardware common to standard operations in the underlying superconducting circuits, thereby facilitating the exploration of many-body quantum entanglement with dissipative resources. |
| title | Hardware-Efficient Stabilization of Entanglement via Engineered Dissipation in Superconducting Circuits |
| topic | Quantum Physics |
| url | https://arxiv.org/abs/2407.13321 |