2013
DOI: 10.1073/pnas.1305920110
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All-optical control of a solid-state spin using coherent dark states

Abstract: The study of individual quantum systems in solids, for use as quantum bits (qubits) and probes of decoherence, requires protocols for their initialization, unitary manipulation, and readout. In many solid-state quantum systems, these operations rely on disparate techniques that can vary widely depending on the particular qubit structure. One such qubit, the nitrogen-vacancy (NV) center spin in diamond, can be initialized and read out through its special spin-selective intersystem crossing, while microwave elec… Show more

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Cited by 119 publications
(99 citation statements)
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References 57 publications
(58 reference statements)
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“…Among these systems, the nitrogen-vacancy (NV) centers in diamond exhibit a set of particularly desirable features: individual centers can be initialized and read out optically, 1-4 possess naturally long coherence times even at room temperature, [5][6][7] and can be controlled 8 using magnetic fields, 9-12 optical excitations, [13][14][15][16][17] and electric fields. [18][19][20] As a result, the NV centers have attracted much attention as prospective qubits for quantum information processing, 4,7,15,16,[21][22][23][24][25] and as nanoscale sensors.…”
Section: Introductionmentioning
confidence: 99%
“…Among these systems, the nitrogen-vacancy (NV) centers in diamond exhibit a set of particularly desirable features: individual centers can be initialized and read out optically, 1-4 possess naturally long coherence times even at room temperature, [5][6][7] and can be controlled 8 using magnetic fields, 9-12 optical excitations, [13][14][15][16][17] and electric fields. [18][19][20] As a result, the NV centers have attracted much attention as prospective qubits for quantum information processing, 4,7,15,16,[21][22][23][24][25] and as nanoscale sensors.…”
Section: Introductionmentioning
confidence: 99%
“…4(b). This three-level system can be used in numerous quantum applications and demonstrations, including coherent population trapping [43], optical spin qubit rotations [44,45] and generation of spin-photon entanglement [2,46] with applications in quantum repeaters [47]. In summary, we addressed the crucial need of calculating the multi-particle fine structure of the silicon vacancy defect in SiC.…”
mentioning
confidence: 99%
“…The complex level structure and selection rules of the NV center's optical transitions offer a rich and flexible set of possibilities for coherent all-optical control of all three spin sublevels. Past experiments have demonstrated optical spin manipulation under a large magnetic field or two-photon Rabi oscillations and stimulated Raman adiabatic passage (STIRAP) on microsecond timescales [13][14][15].In this Letter, we demonstrate complete all-optical coherent manipulation of the NV spin states. Importantly, initialization and readout of the spin states are also performed all-optically, providing a full set of experimental techniques that eliminates the need for microwave addressing.…”
mentioning
confidence: 73%
“…We next explore coherent transfer of population between the |0 and |±1 states. This requires the coherent control of non-spin-preserving cross transitions between the ground and excited states [14,23]. We present spectroscopy and characterization of the tripod system formed between the |A 2 excited state and all three ground state levels in the same low-strain NV center as above.…”
Section: Pacs Numbersmentioning
confidence: 97%
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