Single-electron spin resonance in a nanoelectronic device using a global field
Large-scale qubit control in spin-based quantum computers can be realized using a global microwave field, generated off chip. Spin-based silicon quantum electronic circuits offer a scalable platform for quantum computation, combining the manufacturability of semiconductor devices with the long coher...
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Veröffentlicht in: | Science advances 2021-08, Vol.7 (33) |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Large-scale qubit control in spin-based quantum computers can be realized using a global microwave field, generated off chip.
Spin-based silicon quantum electronic circuits offer a scalable platform for quantum computation, combining the manufacturability of semiconductor devices with the long coherence times afforded by spins in silicon. Advancing from current few-qubit devices to silicon quantum processors with upward of a million qubits, as required for fault-tolerant operation, presents several unique challenges, one of the most demanding being the ability to deliver microwave signals for large-scale qubit control. Here, we demonstrate a potential solution to this problem by using a three-dimensional dielectric resonator to broadcast a global microwave signal across a quantum nanoelectronic circuit. Critically, this technique uses only a single microwave source and is capable of delivering control signals to millions of qubits simultaneously. We show that the global field can be used to perform spin resonance of single electrons confined in a silicon double quantum dot device, establishing the feasibility of this approach for scalable spin qubit control. |
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ISSN: | 2375-2548 2375-2548 |
DOI: | 10.1126/sciadv.abg9158 |