Fermion-to-qubit encodings with arbitrary code distance

Abstract We introduce a framework which allows to systematically and arbitrarily scale the code distance of local fermion-to-qubit encodings in one and two dimensions without growing the weights of stabilizers. This is achieved by embedding low-distance encodings into the surface code in the form of topological defects. We introduce a family of Ladder Encodings (LE), which is optimal in the sense that the code distance is equal to the weights of density and nearest-neighbor hopping operators of a one-dimensional Fermi-Hubbard model. In two dimensions, we show how to scale the code distance of LE as well as other low-distance encodings such as Verstraete-Cirac and Derby-Klassen. We further introduce Perforated Encodings, which locally encode two fermionic spin modes within the same surface code structure. We show that our strategy is also extendable to other topological codes by explicitly embedding the LE into a 6.6.6 color code.

Authors

Publication Details

Journal
Quantum Science and Technology
Published
2026-09-17
DOI
https://doi.org/10.1088/2058-9565/aea92c
Citations
1
Primary Topic
Quantum Computing Algorithms and Architecture
Type
article
Field-Weighted Citation Impact
5.83
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article

Fermion-to-qubit encodings with arbitrary code distance

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Quantum Computing Algorithms and Architecture
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article

Fermion-to-qubit encodings with arbitrary code distance

Alessio Calzona, Miha Papič, Manuel G. Algaba, F. Šimkovic, Inés de Vega
article en
1 citations

Abstract

Abstract We introduce a framework which allows to systematically and arbitrarily scale the code distance of local fermion-to-qubit encodings in one and two dimensions without growing the weights of stabilizers. This is achieved by embedding low-distance encodings into the surface code in the form of topological defects. We introduce a family of Ladder Encodings (LE), which is optimal in the sense that the code distance is equal to the weights of density and nearest-neighbor hopping operators of a one-dimensional Fermi-Hubbard model. In two dimensions, we show how to scale the code distance of LE as well as other low-distance encodings such as Verstraete-Cirac and Derby-Klassen. We further introduce Perforated Encodings, which locally encode two fermionic spin modes within the same surface code structure. We show that our strategy is also extendable to other topological codes by explicitly embedding the LE into a 6.6.6 color code.

Quantum Science and Technology
Openalex Percentile: Top 8%
Quantum Computing Algorithms and Architecture
5.83
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Fermion-to-qubit encodings with arbitrary code distance — Alessio Calzona, Miha Papič, et al. · Quantum Science and Technology (2026) | TGRS Research Map | TGRS