Cavity-enhanced optical readout and control of nuclear spin qubits

Оптическое считывание и управление ядерными спиновыми кубитами с усилением в резонаторе
Andreas Reiserer, Alexander Ulanowski, Johannes Früh, Fabian Salamon, Adrian Holzäpfel
2026-08-29

167Er:Y2SiO5cavity-enhanced optical readoutfrequency-selective emission enhancementnuclear spin qubitsquantum networks
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 167 Er 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 167 Er as a leading platform for long-range, fiber-based quantum networks.
1
Applying a large magnetic field suppresses paramagnetic impurity effects and yields nuclear-spin coherence times exceeding 0.2 seconds.
2
Embedding 167Er dopants in yttrium orthosilicate inside a cryogenic Fabry–Perot cavity enables direct all-optical initialization, coherent control, and readout of individual nuclear-spin qubits.
3
Frequency-selective cavity enhancement achieves a single-shot nuclear-spin readout fidelity of 91(2)%.
4
The cavity linewidth of 65 MHz is substantially narrower than the 0.9 GHz separation between neighboring hyperfine levels, enabling frequency-selective emission enhancement.
5
The combination of nuclear-spin qubits, frequency-multiplexed addressing, and lifetime-limited photon emission in the telecommunications C-band supports 167Er as a platform for long-range fiber-based quantum networks.

Nuclear spin qubits of 167Er dopants in yttrium orthosilicate embedded in a cryogenic Fabry–Perot cavity

Cavity-enhanced all-optical initialization, coherent control, and single-shot readout of individual nuclear spin qubits, including their coherence and frequency-selective emission

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2026-08-29
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Andreas Reiserer
Alexander Ulanowski
Johannes Früh
Fabian Salamon
Adrian Holzäpfel
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