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Trapped Ion Quantum Computing Superconducting Qubits

Multi-Purpose Architecture for Fast Reset and Protective Readout of Superconducting Qubits

arXiv
Authors: Jiayu Ding, Yulong Li, He Wang, Guangming Xue, Tang Su, Chenlu Wang, Weijie Sun, Feiyu Li, Yujia Zhang, Yang Gao, Jun Peng, Zhi Hao Jiang, Yang Yu, Haifeng Yu, Fei Yan

Year

2024

Paper ID

64796

Status

Preprint

Abstract Read

~2 min

Abstract Words

206

Citations

N/A

Abstract

The ability to fast reset a qubit state is crucial for quantum information processing. However, to actively reset a qubit requires engineering a pathway to interact with a dissipative bath, which often comes with the cost of reduced qubit protection from the environment. Here, we present a novel multi-purpose architecture that enables fast reset and protection of superconducting qubits during control and readout. In our design, two on-chip diplexers are connected by two transmission lines. The high-pass branch provides a flat passband for convenient allocation of readout resonators above the qubit frequencies, which is preferred for reducing measurement-induced state transitions. In the low-pass branch, we leverage a standing-wave mode below the maximum qubit frequency for a rapid reset. The qubits are located in the common stopband to inhibit dissipation during coherent operations. We demonstrate resetting a transmon qubit from its first excited state to the ground state in 100 ns, achieving a residual population of 2.7%. The reset time may be further shortened to 27 ns by exploiting the coherent population inversion effect. We further extend the technique to resetting the qubit from its second excited state. Our approach promises scalable implementation of fast reset and qubit protection during control and readout, adding to the toolbox of dissipation engineering.

Why This Paper Matters

  • This paper contributes to the Superconducting Qubits research area in the Quantum Articles archive.
  • It adds a 2024 reference point for readers tracking recent quantum research.
  • The ability to fast reset a qubit state is crucial for quantum information processing.

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