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Ultrafast high-fidelity state readout of single neutral atom
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Ultrafast high-fidelity state readout of single neutral atom
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The capability to measure the state of a quantum system is vital to a practical quantum network, for applications including distributed quantum computing and long-distance quantum communication. As a thriving platform for quantum information technology, single neutral atoms suffer from low achievable photon scattering rate and shallow trapping potential, which limits the fidelity and speed of state readout process. Here, by coupling an single neutral atom with a high-finesse fiber-based Fabry-P\'erot microcavity (FFPC) in Purcell regime, we realize strong enhancement of the atomic photoemission rate, which enables ultrafast and high-fidelity discrimination of bright and dark hyperfine states of the atom. The readout fidelity can reach 99.1(2)% within 200 ns and 99.985(8)% within 9 $\mu$s. Furthermore, we demonstrate that state preparation via optical pumping can be efficiently accelerated by real-time decision protocol based on ultrafast state readout. This work paves the way to the implementation of quantum networking protocols with high communication rate and high fidelity.
Forward citations
Cited by 2 Pith papers
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Rapid Cavity-Based Mid-Circuit Measurement and Feedforward in a Neutral Atom Array
Cavity-based technique achieves sub-100 μs mid-circuit measurement and feedforward in neutral atom arrays with sub-percent infidelity and minimal crosstalk.
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Rapid Cavity-Based Mid-Circuit Measurement and Feedforward in a Neutral Atom Array
Cavity-based mid-circuit measurement and feedforward in a neutral-atom array runs in 45 µs, with four measured qubits and a fifth qubit kept coherent.
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