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Stabilizing an individual charge fluctuator in a Si/SiGe quantum dot

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arxiv 2407.05439 v2 pith:NHGJOIQY submitted 2024-07-07 cond-mat.mes-hall quant-ph

classification cond-mat.mes-hallquant-ph
keywords noisechargefluctuatormethodsquantumtechniquesenableimproved
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Charge noise is a major obstacle to improved gate fidelities in silicon spin qubits. Numerous methods exist to mitigate charge noise, including improving device fabrication, dynamical decoupling, and real-time parameter estimation. In this work, we demonstrate a new class of techniques to mitigate charge noise in semiconductor quantum dots by controlling the noise sources themselves. Using two different classical feedback methods, we stabilize an individual charged two-level fluctuator in a Si/SiGe quantum dot by exploiting sensitive gate-voltage dependence of the switching times. These control methods reduce the low-frequency component of the noise power spectrum by an order of magnitude. These techniques also enable stabilizing the fluctuator in either of its states. In the future, such techniques may enable improved coherence times in quantum-dot spin qubits.

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    A binary-search Bayesian estimator running on an FPGA calibrates a transmon qubit's frequency in a handful of single-shot measurements, improving coherence and gate fidelity.

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