All-optical single-shot readout of a superconducting qubit

Arnold GM, Werner T, Sahu R, Kapoor L, Qiu L, Fink JM. All-optical single-shot readout of a superconducting qubit. arXiv, 10.48550/ARXIV.2310.16817.


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Abstract
The rapid development of superconducting quantum hardware is expected to run into significant I/O restrictions due to the need for large-scale error correction in a cryogenic environment. Classical data centers rely on fiber-optic interconnects to remove similar networking bottlenecks and to allow for reconfigurable, software-defined infrastructures. In the same spirit, ultra-cold electro-optic links have been proposed and used to generate qubit control signals, or to replace cryogenic readout electronics. So far, the latter suffered from either low efficiency, low bandwidth and the need for additional microwave drives, or breaking of Cooper pairs and qubit states. In this work we realize electro-optic microwave photonics at millikelvin temperatures to implement a radio-over-fiber qubit readout that does not require any active or passive cryogenic microwave equipment. We demonstrate all-optical single-shot-readout by means of the Jaynes-Cummings nonlinearity in a circulator-free readout scheme. Importantly, we do not observe any direct radiation impact on the qubit state as verified with high-fidelity quantum-non-demolition measurements despite the absence of shielding elements. This compatibility between superconducting circuits and telecom wavelength light is not only a prerequisite to establish modular quantum networks, it is also relevant for multiplexed readout of superconducting photon detectors and classical superconducting logic. Moreover, this experiment showcases the potential of electro-optic radiometry in harsh environments - an electronics-free sensing principle that extends into the THz regime with applications in radio astronomy, planetary missions and earth observation.
Publishing Year
Date Published
2023-10-25
Journal Title
arXiv
Acknowledgement
We thank F. Hassani and M. Zemlicka for assistance with qubit design and high power readout respectively, and P. Winkel and I. Pop at KIT for providing the JPA. This work was supported by the European Research Council under grant agreement no. 758053 (ERC StG QUNNECT) and no. 101089099 (ERC CoG cQEO), the European Union’s Horizon 2020 research and innovation program under grant agreement no. 899354 (FETopen SuperQuLAN) and the Austrian Science Fund (FWF) through BeyondC (grant no. F7105). L.Q. acknowledges generous support from the ISTFELLOW programme and G.A. is the recipient of a DOC fellowship of the Austrian Academy of Sciences at IST Austria.
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Cite this

Arnold GM, Werner T, Sahu R, Kapoor L, Qiu L, Fink JM. All-optical single-shot readout of a superconducting qubit. arXiv. doi:10.48550/ARXIV.2310.16817
Arnold, G. M., Werner, T., Sahu, R., Kapoor, L., Qiu, L., & Fink, J. M. (n.d.). All-optical single-shot readout of a superconducting qubit. arXiv. https://doi.org/10.48550/ARXIV.2310.16817
Arnold, Georg M, Thomas Werner, Rishabh Sahu, Lucky Kapoor, Liu Qiu, and Johannes M Fink. “All-Optical Single-Shot Readout of a Superconducting Qubit.” ArXiv, n.d. https://doi.org/10.48550/ARXIV.2310.16817.
G. M. Arnold, T. Werner, R. Sahu, L. Kapoor, L. Qiu, and J. M. Fink, “All-optical single-shot readout of a superconducting qubit,” arXiv. .
Arnold GM, Werner T, Sahu R, Kapoor L, Qiu L, Fink JM. All-optical single-shot readout of a superconducting qubit. arXiv, 10.48550/ARXIV.2310.16817.
Arnold, Georg M., et al. “All-Optical Single-Shot Readout of a Superconducting Qubit.” ArXiv, doi:10.48550/ARXIV.2310.16817.
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