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An atomic-scale multi-qubit platform

Authors :
Institute for Basic Science (South Korea)
Office of Naval Research (US)
University of Tokyo
Agencia Estatal de Investigación (España)
Ministerio de Ciencia, Innovación y Universidades (España)
European Commission
Eusko Jaurlaritza
National Natural Science Foundation of China
Wang, Yu
Chen, Yi
Bui, Thi Hong
Wolf, Christoph
Haze, Masahiro
Mier, Cristina
Kim, Jinkyung
Choi, Deung-Jang
Lutz, Christopher P.
Bae, Yujeong
Phark, Soo-hyon
Heinrich, Andreas J.
Institute for Basic Science (South Korea)
Office of Naval Research (US)
University of Tokyo
Agencia Estatal de Investigación (España)
Ministerio de Ciencia, Innovación y Universidades (España)
European Commission
Eusko Jaurlaritza
National Natural Science Foundation of China
Wang, Yu
Chen, Yi
Bui, Thi Hong
Wolf, Christoph
Haze, Masahiro
Mier, Cristina
Kim, Jinkyung
Choi, Deung-Jang
Lutz, Christopher P.
Bae, Yujeong
Phark, Soo-hyon
Heinrich, Andreas J.
Publication Year :
2023

Abstract

Individual electron spins in solids are promising candidates for quantum science and technology, where bottom-up assembly of a quantum device with atomically precise couplings has long been envisioned. Here, we realized atom-by-atom construction, coherent operations, and readout of coupled electron-spin qubits using a scanning tunneling microscope. To enable the coherent control of “remote” qubits that are outside of the tunnel junction, we complemented each electron spin with a local magnetic field gradient from a nearby single-atom magnet. Readout was achieved by using a sensor qubit in the tunnel junction and implementing pulsed double electron spin resonance. Fast single-, two-, and three-qubit operations were thereby demonstrated in an all-electrical fashion. Our angstrom-scale qubit platform may enable quantum functionalities using electron spin arrays built atom by atom on a surface.

Details

Database :
OAIster
Notes :
English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1431957906
Document Type :
Electronic Resource