A state-dependent Lindblad jump operator produces qubit readout signal at O(t) rather than O(t^2) by imprinting information on the external radiative amplitude from an initially empty cavity.
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A donor-cluster array architecture in silicon uses shared electrons and natural hyperfine distributions for individual spin addressability, tunable inter-cluster exchange, and high-fidelity gates to enable scalable quantum computing.
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Qubit Readout via State-Dependent Radiative Linewidths
A state-dependent Lindblad jump operator produces qubit readout signal at O(t) rather than O(t^2) by imprinting information on the external radiative amplitude from an initially empty cavity.
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Scalable Spin Qubit Architecture with Donor-Cluster Arrays in Silicon
A donor-cluster array architecture in silicon uses shared electrons and natural hyperfine distributions for individual spin addressability, tunable inter-cluster exchange, and high-fidelity gates to enable scalable quantum computing.