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Nv Centers Solid State Defects
Qubit Coherence Noise Stability Characterization
RF-free driving of nuclear spins with color centers in silicon carbide
arXiv
Authors: Raphael Wörnle, Jonathan Körber, Timo Steidl, Georgy V. Astakhov, Durga B. R. Dasari, Florian Kaiser, Vadim Vorobyov, Jörg Wrachtrup
Year
2026
Paper ID
3147
Status
Preprint
Abstract Read
~2 min
Abstract Words
171
Citations
N/A
Abstract
Color centers that enable nuclear-spin control without RF fields offer a powerful route towards simplified and scalable quantum devices. Such capabilities are especially valuable for quantum sensing and computing platforms that already find applications in biology, materials science, and geophysics. A key challenge is the coherent manipulation of nearby nuclear spins, which serve as quantum memories and auxiliary qubits but conventionally require additional high-power RF fields which increase the experimental complexity and overall power consumption. Finding systems where both electron and nuclear spins can be controlled using a single MW source is therefore highly desirable. Here, using a modified divacancy center in silicon carbide, we show that coherent control of a coupled nuclear spin is possible without any RF fields. Instead, MW pulses driving the electron spin also manipulate the nuclear spin through hyperfineenhanced effects, activated by a precisely tilted external magnetic field. We demonstrate high-fidelity nuclear-spin control, achieving 89% two-qubit tomography fidelity and nearly T1-limited nuclear coherence times. This approach offers a simplified and scalable route for future quantum applications.
Why This Paper Matters
- This paper contributes to the Qubit Coherence, Noise & Stability Characterization research area in the Quantum Articles archive.
- It adds a 2026 reference point for readers tracking recent quantum research.
- Color centers that enable nuclear-spin control without RF fields offer a powerful route towards simplified and scalable quantum devices.
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