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Updated: Aug 31, 2026

Resonance Fluorescence of an InGaAs Quantum Dot in a Planar Cavity Using Orthogonal Excitation and Detection
Published on: October 13, 2017
Cavity-enhanced optical readout and control of nuclear spin qubits
Alexander Ulanowski1,2,3, Johannes Früh1,2,3, Fabian Salamon1,2,3
1Physics Department and Munich Center for Quantum Science and Technology (MCQST), Technical University of Munich, TUM School of Natural Sciences, Garching, Germany.
Abstract:
Their exceptional coherence makes nuclear spins in solids a prime candidate for quantum memories in quantum networks and repeaters. Still, the direct all-optical initialization, coherent control, and readout of individual nuclear spin qubits have been an outstanding challenge. Here, this is achieved by embedding 167Er dopants in yttrium orthosilicate in a cryogenic Fabry-Perot cavity, whose linewidth of 65 MHz is much smaller than the 0.9 GHz separation of neighboring hyperfine levels. Frequency-selective emission enhancement thus enables a single-shot readout fidelity of 91(2) %. Furthermore, a large magnetic field freezes paramagnetic impurities, leading to coherence times exceeding 0.2 s. The combination of nuclear-spin qubits with frequency-multiplexed addressing and lifetime-limited photon emission in the minimal-loss telecommunications C-band establishes 167Er as a leading platform for long-range, fiber-based quantum networks.
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