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  1. 原著論文

Coupling 4H-Silicon Carbide spins to a microwave resonator at milli-Kelvin temperature

https://repo.qst.go.jp/records/2002867
https://repo.qst.go.jp/records/2002867
874650db-110b-4102-9390-e244200c3cf8
アイテムタイプ 学術雑誌論文 / Journal Article(1)
公開日 2026-02-27
タイトル
タイトル Coupling 4H-Silicon Carbide spins to a microwave resonator at milli-Kelvin temperature
言語 ja
言語
言語 jpn
資源タイプ
資源タイプ識別子 http://purl.org/coar/resource_type/c_6501
資源タイプ journal article
著者 Ali Fawaz

× Ali Fawaz

Ali Fawaz

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Jeremy Bourhill

× Jeremy Bourhill

Jeremy Bourhill

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Stefania Castelletto

× Stefania Castelletto

Stefania Castelletto

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阿部 浩之

× 阿部 浩之

阿部 浩之

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大島 武

× 大島 武

大島 武

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Michael Tobar

× Michael Tobar

Michael Tobar

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Thomas Volz

× Thomas Volz

Thomas Volz

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Maxim Goryachev

× Maxim Goryachev

Maxim Goryachev

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Sarath Raman Nair

× Sarath Raman Nair

Sarath Raman Nair

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抄録
内容記述タイプ Abstract
内容記述 Coupling microwave cavity modes with spin qubit transitions is crucial for enabling efficient qubit readout and control, long-distance qubit coupling, quantum memory implementation, and entanglement generation. We experimentally observe the coupling of different spin qubit transitions in silicon carbide (Si⁢C) material to a three-dimensional microwave (MW) resonator mode around 12.6 GHz at a temperature of 10 mK. Tuning the spin resonances across the cavity resonance via magnetic field sweeps, we perform microwave cavity transmission measurements. We observe spin transitions of different spin defects that are detuned from each other by around 60–70 MHz. By optically exciting the Si⁢C sample placed in the MW cavity with an 810-nm laser, we observe the coupling of an additional spin resonance to the MW cavity, also detuned by around 60–70 MHz from the center resonance. We perform complementary confocal optical spectroscopy as a function of temperature from 4 to 200 K, using a part of the same sample used for the cavity measurements. Combining the confocal spectroscopy results and a detailed analysis of the MW-resonator-based experiments, we attribute the observed spin resonances to two different paramagnetic defects, the negatively charged silicon-vacancy spins located at the 𝑉1 and 𝑉2 lattice sites. The 𝑉1 and 𝑉2 lines in Si⁢C are interesting qubit transitions since they are known to be robust to decoherence. Consequently, the demonstration of the joint coupling of these spin qubits to a MW cavity mode could lead to interesting new modalities: The microwave cavity could act as an information bus and mediate long-range coupling between the spins, with potential applications in quantum computing and quantum communication, which is an especially attractive proposition in a complementary metal-oxide semiconductor–compatible material such as Si⁢C.
書誌情報 PHYSICAL REVIEW Applied

巻 24, p. 064075, 発行日 2025-12
出版者
出版者 the American Physical Society
DOI
識別子タイプ DOI
関連識別子 10.1103/zpzb-qp71
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Ver.1 2026-03-05 05:27:40.196517
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