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Multi-frequency control and measurement of a spin-7/2 system encoded in a transmon qudit

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arxiv 2405.15857 v1 pith:BW2KOCRM submitted 2024-05-24 quant-ph

classification quant-ph
keywords operationsquantumquditcontroldisplacementefficientmeasurementmulti-frequency
verification ladder T0 review T1 audit T2 compute T3 formal
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Qudits hold great promise for efficient quantum computation and the simulation of high-dimensional quantum systems. Utilizing a local Hilbert space of dimension d > 2 is known to speed up certain quantum algorithms relative to their qubit counterparts given efficient local qudit control and measurement. However, the direct realization of high-dimensional rotations and projectors has proved challenging, with most experiments relying on decompositions of SU(d) operations into series of rotations between two-level subspaces of adjacent states and projective readout of a small number of states. Here we employ simultaneous multi-frequency drives to generate rotations and projections in an effective spin-7/2 system by mapping it onto the energy eigenstates of a superconducting circuit. We implement single-shot readout of the 8 states using a multi-tone dispersive readout (F_assignment = 88.3%) and exploit the strong nonlinearity in a high EJ/EC transmon to simultaneously address each transition and realize a spin displacement operator. By combining the displacement operator with a virtual SNAP gate, we realize arbitrary single-qudit unitary operations in O(d) physical pulses and extract spin displacement gate fidelities ranging from 0.997 to 0.989 for virtual spins of size j = 1 to j = 7/2. These native qudit operations could be combined with entangling operations to explore qudit-based error correction or simulations of lattice gauge theories with qudits. Our multi-frequency approach to qudit control and measurement can be readily extended to other physical platforms that realize a multi-level system coupled to a cavity and can become a building block for efficient qudit-based quantum computation and simulation.

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Cited by 2 Pith papers

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

  1. Real-time adaptive quantum error correction by model-free multi-agent learning

    quant-ph 2025-09 conditional novelty 7.0 of 10

    Adaptive quantum error correction: multi-agent RL discovers QEC circuits offline; a bandit-controlled variational layer retrains online, cutting logical infidelity about 18x (qubit) and 3x (qutrit) under drifting bit/...

  2. Efficient Implementation of a Quantum Algorithm with a Trapped Ion Qudit

    quant-ph 2025-06 conditional novelty 6.0 of 10

    First implementation of Grover's search on trapped-ion qudits of dimension 5 and 8, with measured success probabilities of 96.8% and 69%.

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