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Quantum transfer of interacting qubits

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arxiv 2205.01579 v1 pith:VV3MTX3C submitted 2022-05-03 quant-ph cond-mat.other

classification quant-phcond-mat.other
keywords transferquantuminteractingqubitsstatehigh-fidelityinformationachieving
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The transfer of quantum information between different locations is key to many quantum information processing tasks. Whereas, the transfer of a single qubit state has been extensively investigated, the transfer of a many-body system configuration has insofar remained elusive. We address the problem of transferring the state of n interacting qubits. Both the exponentially increasing Hilbert space dimension, and the presence of interactions significantly scale-up the complexity of achieving high-fidelity transfer. By employing tools from random matrix theory and using the formalism of quantum dynamical maps, we derive a general expression for the average and the variance of the fidelity of an arbitrary quantum state transfer protocol for n interacting qubits. Finally, by adopting a weak-coupling scheme in a spin chain, we obtain the explicit conditions for high-fidelity transfer of 3 and 4 interacting qubits.

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Cited by 1 Pith paper

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  1. Memory effects in repeated uses of quantum channels

    quant-ph 2025-11 conditional novelty 6.0 of 10

    An exact analytical expression for the n-th-use average quantum state transfer fidelity in U(1)-symmetric quantum channels shows that memory effects from repeated use, worsened by readout timing errors, degrade fideli...

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