Engineering near-infrared single-photon emitters with optically active spins in ultrapure silicon carbide

被引:181
|
作者
Fuchs, F. [1 ]
Stender, B. [1 ]
Trupke, M. [2 ]
Simin, D. [1 ]
Pflaum, J. [1 ,3 ]
Dyakonov, V. [1 ,3 ]
Astakhov, G. V. [1 ]
机构
[1] Univ Wurzburg, Expt Phys 4, D-97074 Wurzburg, Germany
[2] TU Wien, Atominst, Vienna Ctr Quantum Sci & Technol, A-1020 Vienna, Austria
[3] Bavarian Ctr Appl Energy Res ZAE Bayern, D-97074 Wurzburg, Germany
来源
NATURE COMMUNICATIONS | 2015年 / 6卷
关键词
NUCLEAR-MAGNETIC-RESONANCE; ROOM-TEMPERATURE; COHERENT CONTROL; VACANCY; 4H; ENTANGLEMENT; PHOSPHORUS; DEFECTS; QUBITS;
D O I
10.1038/ncomms8578
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Vacancy-related centres in silicon carbide are attracting growing attention because of their appealing optical and spin properties. These atomic-scale defects can be created using electron or neutron irradiation; however, their precise engineering has not been demonstrated yet. Here, silicon vacancies are generated in a nuclear reactor and their density is controlled over eight orders of magnitude within an accuracy down to a single vacancy level. An isolated silicon vacancy serves as a near-infrared photostable single-photon emitter, operating even at room temperature. The vacancy spins can be manipulated using an optically detected magnetic resonance technique, and we determine the transition rates and absorption cross-section, describing the intensity-dependent photophysics of these emitters. The on-demand engineering of optically active spins in technologically friendly materials is a crucial step toward implementation of both maser amplifiers, requiring high-density spin ensembles, and qubits based on single spins.
引用
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页数:7
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