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Native qudit entanglement in a trapped ion quantum processor.


ABSTRACT: Quantum information carriers, just like most physical systems, naturally occupy high-dimensional Hilbert spaces. Instead of restricting them to a two-level subspace, these high-dimensional (qudit) quantum systems are emerging as a powerful resource for the next generation of quantum processors. Yet harnessing the potential of these systems requires efficient ways of generating the desired interaction between them. Here, we experimentally demonstrate an implementation of a native two-qudit entangling gate up to dimension 5 in a trapped-ion system. This is achieved by generalizing a recently proposed light-shift gate mechanism to generate genuine qudit entanglement in a single application of the gate. The gate seamlessly adapts to the local dimension of the system with a calibration overhead that is independent of the dimension.

SUBMITTER: Hrmo P 

PROVIDER: S-EPMC10115791 | biostudies-literature | 2023 Apr

REPOSITORIES: biostudies-literature

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Native qudit entanglement in a trapped ion quantum processor.

Hrmo Pavel P   Wilhelm Benjamin B   Gerster Lukas L   van Mourik Martin W MW   Huber Marcus M   Blatt Rainer R   Schindler Philipp P   Monz Thomas T   Ringbauer Martin M  

Nature communications 20230419 1


Quantum information carriers, just like most physical systems, naturally occupy high-dimensional Hilbert spaces. Instead of restricting them to a two-level subspace, these high-dimensional (qudit) quantum systems are emerging as a powerful resource for the next generation of quantum processors. Yet harnessing the potential of these systems requires efficient ways of generating the desired interaction between them. Here, we experimentally demonstrate an implementation of a native two-qudit entang  ...[more]

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