TY - JOUR
T1 - Qutrit toric code and parafermions in trapped ions
AU - Iqbal, Mohsin
AU - Lyons, Anasuya
AU - Lo, Chiu Fan Bowen
AU - Tantivasadakarn, Nathanan
AU - Dreiling, Joan
AU - Foltz, Cameron
AU - Gatterman, Thomas M.
AU - Gresh, Dan
AU - Hewitt, Nathan
AU - Holliman, Craig A.
AU - Johansen, Jacob
AU - Neyenhuis, Brian
AU - Matsuoka, Yohei
AU - Mills, Michael
AU - Moses, Steven A.
AU - Siegfried, Peter
AU - Vishwanath, Ashvin
AU - Verresen, Ruben
AU - Dreyer, Henrik
N1 - Publisher Copyright:
© The Author(s) 2025.
PY - 2025/12
Y1 - 2025/12
N2 - The development of programmable quantum devices can be measured by the complexity of many-body states that they are able to prepare. Among the most significant are topologically ordered states of matter, which enable robust quantum information storage and processing. While topological orders are more readily accessible with qudits, experimental realizations have thus far been limited to lattice models of qubits. Here, we prepare and measure a ground state of the Z3 toric code state on 24 qutrits (obtained by encoding one qutrit into two qubits) in a trapped ion quantum processor with fidelity per qutrit exceeding 96.5(3)%. We manipulate two types of defects which go beyond the conventional qubit toric code: a parafermion, and its bound state which is related to charge conjugation symmetry. We further demonstrate defect fusion and the transfer of entanglement between anyons and defects, which we use to control topological qutrits. Our work opens up the space of long-range entangled states with qudit degrees of freedom for use in quantum simulation and universal error-correcting codes.
AB - The development of programmable quantum devices can be measured by the complexity of many-body states that they are able to prepare. Among the most significant are topologically ordered states of matter, which enable robust quantum information storage and processing. While topological orders are more readily accessible with qudits, experimental realizations have thus far been limited to lattice models of qubits. Here, we prepare and measure a ground state of the Z3 toric code state on 24 qutrits (obtained by encoding one qutrit into two qubits) in a trapped ion quantum processor with fidelity per qutrit exceeding 96.5(3)%. We manipulate two types of defects which go beyond the conventional qubit toric code: a parafermion, and its bound state which is related to charge conjugation symmetry. We further demonstrate defect fusion and the transfer of entanglement between anyons and defects, which we use to control topological qutrits. Our work opens up the space of long-range entangled states with qudit degrees of freedom for use in quantum simulation and universal error-correcting codes.
UR - https://www.scopus.com/pages/publications/105010199795
U2 - 10.1038/s41467-025-61391-z
DO - 10.1038/s41467-025-61391-z
M3 - Article
C2 - 40628706
AN - SCOPUS:105010199795
SN - 2041-1723
VL - 16
JO - Nature Communications
JF - Nature Communications
IS - 1
M1 - 6301
ER -