抄録
Silicon quantum dot spin qubits provide a promising platform for large-scale quantum computation because of their compatibility with conventional CMOS manufacturing and the long coherence times accessible using 28Si enriched material. A scalable error-corrected quantum processor, however, will require control of many qubits in parallel, while performing error detection across the constituent qubits. Spin resonance techniques are a convenient path to parallel two-axis control, while Pauli spin blockade can be used to realize local parity measurements for error detection. Despite this, silicon qubit implementations have so far focused on either single-spin resonance control, or control and measurement via voltage-pulse detuning in the two-spin singlet–triplet basis, but not both simultaneously. Here, we demonstrate an integrated device platform incorporating a silicon metal-oxide-semiconductor double quantum dot that is capable of single-spin addressing and control via electron spin resonance, combined with high-fidelity spin readout in the singlet-triplet basis.
本文言語 | English |
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論文番号 | 4370 |
ジャーナル | Nature communications |
巻 | 9 |
号 | 1 |
DOI | |
出版ステータス | Published - 2018 12月 1 |
ASJC Scopus subject areas
- 化学 (全般)
- 生化学、遺伝学、分子生物学(全般)
- 一般
- 物理学および天文学(全般)