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Snakes on a Plane: mobile, low dimensional logical qubits on a 2D surface
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Recent demonstrations indicate that silicon-spin QPUs will be able to shuttle physical qubits rapidly and with high fidelity - a desirable feature for maximising logical connectivity, supporting new codes, and routing around damage. However it may seem that shuttling at the logical level is unwise: static defects in the device may 'scratch' a logical qubit as it passes, causing correlated errors to which the code is highly vulnerable. Here we explore an architecture where logical qubits are 1D strings ('snakes') which can be moved freely over a planar latticework. Possible scratch events are inferred via monitor qubits and the complimentary gap; if deemed a risk, remarkably the shuttle process can be undone in a way that negates any corruption. Interaction between logical snakes is facilitated by a semi-transversal method. We obtain encouraging estimates for the tolerable levels of shuttling-related imperfections.
Forward citations
Cited by 2 Pith papers
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A route to damage tolerance exceeding $10\%$ in shuttling-equipped quantum processors
Shuttling-based spin-qubit surface codes retain roughly half their effective code distance at 10% hardware damage, so oversizing by ~2x can compensate.
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Spin-orbit-enabled realization of arbitrary two-qubit gates on moving spins
Spin-orbit coupling during shuttling of two spin qubits can realize any two-qubit gate in one step.
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