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Parallel Entangling Operations on a Universal Ion Trap Quantum Computer

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arxiv 1810.11948 v1 pith:37OATMO3 submitted 2018-10-29 quant-ph cs.ET

classification quant-phcs.ET
keywords quantumgatesparallelqubitscomputerentanglingoperationstrapped
verification ladder T0 review T1 audit T2 compute T3 formal
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The circuit model of a quantum computer consists of sequences of gate operations between quantum bits (qubits), drawn from a universal family of discrete operations. The ability to execute parallel entangling quantum gates offers clear efficiency gains in numerous quantum circuits as well as for entire algorithms such as Shor's factoring algorithm and quantum simulations. In cases such as full adders and multiple-control Toffoli gates, parallelism can provide an exponential improvement in overall execution time. More importantly, quantum gate parallelism is essential for the practical fault-tolerant error correction of qubits that suffer from idle errors. The implementation of parallel quantum gates is complicated by potential crosstalk, especially between qubits fully connected by a common-mode bus, such as in Coulomb-coupled trapped atomic ions or cavity-coupled superconducting transmons. Here, we present the first experimental results for parallel 2-qubit entangling gates in an array of fully-connected trapped ion qubits. We demonstrate an application of this capability by performing a 1-bit full addition operation on a quantum computer using a depth-4 quantum circuit. These results exploit the power of highly connected qubit systems through classical control techniques, and provide an advance toward speeding up quantum circuits and achieving fault tolerance with trapped ion quantum computers.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Error-Resilient Fast Entangling Gates for Scalable Ion-Trap Quantum Processors

    quant-ph 2025-08 conditional novelty 6.0 of 10

    An error-resilient gate search scheme using multi-objective optimization and pulse symmetries enables microsecond two-qubit gates with fidelities approaching 99.9% in linear ion traps of up to 50 ions.

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