新しい量子情報記録材料を発見(Researchers zero in on a new material for quantum information storage)

2025-07-28 アルゴンヌ国立研究所(ANL)

アルゴンヌ国立研究所の研究者らは、量子情報保存に適した新材料として、酸化マグネシウム(MgO)中のニトロゲン‐空孔スピン欠陥を発見した。数千種の欠陥候補を高速スクリーニングし、理論計算と電子構造シミュレーションで特性を評価。従来のダイヤモンドやSiCとは異なるホスト材料として、長時間の量子情報保存が可能と期待される。今後は実験的合成と量子メモリ性能の検証を進める。DOEなどが研究を支援。

新しい量子情報記録材料を発見(Researchers zero in on a new material for quantum information storage)
Magnesium atoms (orange) and oxygen atoms (red) surround the nitrogen-vacancy center in magnesium oxide, shown by a transparent representation of a nitrogen atom under the missing magnesium atom. The yellow and blue spots show how electrons localize around the vacancy.

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マグネシウム酸化物中のNV−中心をハイブリッド量子技術用のスピンキュービットとして利用 An NV− center in magnesium oxide as a spin qubit for hybrid quantum technologies

Vrindaa Somjit,Joel Davidsson,Yu Jin & Giulia Galli
npj Computational Materials  Published:17 March 2025
DOI:https://doi.org/10.1038/s41524-025-01558-w

Abstract

Recent predictions suggest that oxides, such as MgO and CaO, could serve as hosts of spin defects with long coherence times and thus be promising materials for quantum applications. However, in most cases, specific defects have not yet been identified. Here, by using a high-throughput first-principles framework and advanced electronic structure methods, we identify a negatively charged complex between a nitrogen interstitial and a magnesium vacancy in MgO with favorable electronic and optical properties for hybrid quantum technologies. We show that this NV center has stable triplet ground and excited states, with singlet shelving states enabling optical initialization and spin-dependent readout. We predict several properties, including absorption, emission, and zero-phonon line energies, as well as zero-field splitting tensor, and hyperfine interaction parameters, which can aid in the experimental identification of this defect. Our calculations show that due to a strong pseudo-Jahn Teller effect and low-frequency phonon modes, the NV center in MgO is subject to a substantial vibronic coupling. We discuss design strategies to reduce such coupling and increase the Debye-Waller factor, including the effect of strain and the localization of the defect states. We propose that the favorable properties of the NV defect, along with the technological maturity of MgO, could enable hybrid classical-quantum applications, such as spintronic quantum sensors and single qubit gates.

1600情報工学一般
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