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Efficiently preparing chiral states via fermionic cooling on bosonic quantum hardware

Gilad Kishony, Mark S. Rudner, Erez Berg

Research output: Contribution to journalArticlepeer-review

Abstract

Simulating many-body systems is one of the most promising applications of near-term quantum computers. An important open question is how to efficiently prepare the ground states of arbitrary fermionic Hamiltonians, especially those with nontrivial topology. Here, we propose an efficient protocol for preparing low-energy states of fermionic Hamiltonians on a noisy bosonic quantum simulator by adiabatic cooling using a simulated bath. We arrange the couplings such that the simulated system and bath together obtain a local fermionic description in which fermionic excitations can be extracted individually, via coherent hopping to the bath, rather than in pairs as would otherwise be required by fermion parity conservation. This approach thus achieves a linear (rather than quadratic) scaling of the cooling rate vs. excitation density at low densities. We show that certain topological phases such as the chiral (non-Abelian) phase of the Kitaev honeycomb model can be prepared efficiently using our protocol. Our protocol performs favorably in the presence of noise, making it suitable for execution on near-term quantum devices.

Original languageEnglish
Article number73
Number of pages8
JournalCommunications Physics
Volume8
Early online date21 Feb 2025
DOIs
StatePublished - 21 Feb 2025

All Science Journal Classification (ASJC) codes

  • General Physics and Astronomy

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