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Compromise-Free Scaling of Qubit Speed and Coherence

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abstract

Across leading qubit platforms, a common trade-off persists: increasing coherence comes at the cost of operational speed, reflecting the notion that protecting a qubit from its noisy surroundings also limits control over it. This speed-coherence dilemma limits qubit performance across various technologies. Here, we demonstrate a hole spin qubit in a Ge/Si core/shell nanowire that triples its Rabi frequency while simultaneously quadrupling its Hahn-echo coherence time, boosting the Q-factor by over an order of magnitude. This is enabled by the direct Rashba spin-orbit interaction, emerging from heavy-hole-light-hole mixing through strong confinement in two dimensions. Tuning a gate voltage causes this interaction to peak, providing maximum drive speed and a point where the qubit is optimally protected from charge noise, allowing speed and coherence to scale together. Our proof-of-concept shows that careful dot design can overcome a long-standing limitation, offering a new approach towards building high-performance, fault-tolerant qubits.

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A direct dispersive signature of Pauli spin blockade

cond-mat.mes-hall · 2025-06-25 · conditional · novelty 5.0

Pauli spin blockade is observed directly in gate-dispersive reflectometry as a strong modulation of the reservoir charge transitions in Ge/Si nanowire and Si FinFET double quantum dots.

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  • A direct dispersive signature of Pauli spin blockade cond-mat.mes-hall · 2025-06-25 · conditional · none · ref 14 · internal anchor

    Pauli spin blockade is observed directly in gate-dispersive reflectometry as a strong modulation of the reservoir charge transitions in Ge/Si nanowire and Si FinFET double quantum dots.