A Cryo-Cmos Electron/Nuclear Spin Controller with Combined Ghz/Mhz Drivers for Color-Center Qubits
Mohamed A. Elbadry (TU Delft - QCD/Babaie Lab)
Niels Fakkel (TU Delft - QCD/Babaie Lab)
Luc Enthoven (TU Delft - Business Development Start-ups)
Fabio Sebastiano (TU Delft - QCD/Sebastiano Lab, TU Delft - Electrical Engineering, Mathematics and Computer Science)
Masoud Babaie (TU Delft - QCD/Babaie Lab, TU Delft - Electrical Engineering, Mathematics and Computer Science)
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Abstract
Color centers in diamond are a promising quantum-computing platform due to their long coherence times and operation at elevated cryogenic temperatures. This paper presents a 40-nm cryo-CMOS digital-intensive controller that employs a class-D amplifier with a 1-bit Δ Σ quantizer to generate precise, low-noise MHz pulses for nuclear-spin control, and a polar architecture to produce envelope-shaped GHz pulses for electron-spin control. The controller further features merged differential GHz/MHz output drivers, enabling seamless mode switching between electron- and nuclear-spin control. Implemented in 40- nm CMOS and measured at 4 K, the controller meets the requirements for 99.99 % qubit control fidelity and delivers higher output current with improved efficiency at higher operating frequencies compared to prior art.
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