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Two-Photon Interference of Photons from Remote Tin-Vacancy Centers in Diamond
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Scalable quantum networks rely on optical connections between long-lived qubits to distribute entanglement. Tin vacancies in diamond have emerged as promising long-lived qubits, offering extended spin coherence times at liquid helium temperatures and spin-dependent, highly coherent optical transitions for effective photon-based communication. Connecting remote nodes requires quantum interference of indistinguishable photons, which is challenging in an inhomogeneous solid-state environment. Here, we demonstrate a two-node experiment with tin vacancies in diamond, which exhibit a resonant frequency distribution spanning approximately 8 GHz. To overcome the frequency mismatch, we tune the resonant frequencies of one node using the Stark effect. We achieve tunability up to 4 GHz while maintaining optical coherence. As a demonstration, we achieve detuning-dependent remote two-photon interference between separate nodes, obtaining 80(6)% interference visibility without postprocessing when the defects' optical transitions are tuned into resonance, and 63(8)% with detuning up to 20 times their natural linewidths. These results highlight the potential of tin-vacancy centres in diamond for establishing robust optical links between remote quantum registers.
Forward citations
Cited by 4 Pith papers
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High-cooperativity coupling and spin-resolved extinction of tin-vacancy centers in a diamond-like microcavity
A tunable open microcavity with ultra-smooth diamond membranes achieves coherent cooperativity 4.0 and 91% spin-resolved extinction with tin-vacancy centers.
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Above-Unity Coherent Cooperativity of Tin-Vacancy Centers in Diamond Photonic Crystal Cavities
Single tin-vacancy centers in diamond photonic-crystal cavities show coherent cooperativity up to 8.3, the first above-unity coherent coupling for this emitter type.
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Highly indistinguishable photons from a tin-vacancy spin qubit in diamond
Resonantly excited tin-vacancy centers in diamond emit single photons with raw Hong-Ou-Mandel visibilities above 0.95 and estimated intrinsic indistinguishability up to 0.999, preserved after frequency conversion to t...
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Quantum Frequency Conversion of Single Photons from a Tin-Vacancy Center in Diamond
Single photons from diamond SnV centers are converted from 619 nm to the telecom S-band at 1480 nm with 48% internal efficiency and low noise, with the SnV lifetime preserved after conversion.
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