2021
DOI: 10.1103/physrevlett.126.013602
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Coherent Spin-Photon Interface with Waveguide Induced Cycling Transitions

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Cited by 37 publications
(49 citation statements)
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“…Thanks to mature GaAs fabrication technology, our QD-spin system could be further combined with cavities and other photonic structures. This in turn might allow increasing the photon collection efficiency, speed up the spin-initialization process and achieve high optical transition cyclicity 51 for singleshot read-out. Further performance improvement could be achieved by utilizing an n-i-p diode structure, which was shown to allow trapping the charge state via Coulomb blockade, tuning the emission frequency using gate voltage and reducing the charge noise 50 .…”
Section: Discussionmentioning
confidence: 99%
“…Thanks to mature GaAs fabrication technology, our QD-spin system could be further combined with cavities and other photonic structures. This in turn might allow increasing the photon collection efficiency, speed up the spin-initialization process and achieve high optical transition cyclicity 51 for singleshot read-out. Further performance improvement could be achieved by utilizing an n-i-p diode structure, which was shown to allow trapping the charge state via Coulomb blockade, tuning the emission frequency using gate voltage and reducing the charge noise 50 .…”
Section: Discussionmentioning
confidence: 99%
“…The four linear dipoles are driven by a red-detuned Raman laser to rotate the spin qubit [20] while the PCW (FIG. 1b) selectively enhances the optical transitions resulting in the optical cyclicity C = γ y /γ x = 14.7 ± 0.2 [21], which is otherwise unity in a bulk environment. Spinphoton entanglement is then generated according to the protocol in FIG.…”
mentioning
confidence: 99%
“…The entanglement protocol builds upon our recent work on uniting optical cycling transitions with optical spin control [21], as summarised in FIG. 1a.…”
mentioning
confidence: 99%
“…A solidstate quantum emitter deterministically coupled to a cavity or waveguide is an attractive source of on-demand single photons. In particular, self-assembled InAs quantum dots (QDs) in GaAs offer a mature technology for photon generation and a platform for interfacing electron spin and photons in which the decoherence and noise processes have been identified and reduced [2][3][4][5][6]. Despite the excellent performance, a major drawback of InAs-based QD emitters is that the emission wavelength is typically in the range of 900-950 nm.…”
mentioning
confidence: 99%