Scalable High-Dimensional Multipartite Entanglement with Trapped Ions
Abstract
We propose a protocol for the preparation of generalized Greenberger-Horne-Zeilinger (GHZ) states of atoms each with or internal levels. We generalize the celebrated one-axis twisting (OAT) Hamiltonian for qubits to qudits by including OAT interactions of equal strengths between every pair of qudit levels, a protocol we call as balanced OAT (BOAT). Analogous to OAT for qubits, we find that starting from a product state of an arbitrary number of atoms , dynamics under BOAT leads to the formation of GHZ states for qutrits () and ququarts (). While BOAT could potentially be realized on several platforms where all-to-all coupling is possible, here we propose specific implementations using trapped ion systems. We show that preparing these states with a fidelity above a threshold value rules out lower dimensional entanglement than that of the generalized GHZ states. For qutrits, we also propose a protocol to bound the fidelity that requires only global addressing of the ion crystal and single-shot readout of one of the levels. Our results open a path for the scalable generation and certification of high-dimensional multipartite entanglement on current atom-based quantum hardware.
Cite
@article{arxiv.2407.19735,
title = {Scalable High-Dimensional Multipartite Entanglement with Trapped Ions},
author = {Harsh Vardhan Upadhyay and Sanket Kumar Tripathy and Ting Rei Tan and Baladitya Suri and Athreya Shankar},
journal= {arXiv preprint arXiv:2407.19735},
year = {2024}
}
Comments
12 pages, 1 figure; comments welcome