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Preparing quantum many-body scar states on quantum computers

  • Erik J. Gustafson
  • , Andy C.Y. Li
  • , Abid Khan
  • , Joonho Kim
  • , Doga Murat Kürkçuöglu
  • , M. Sohaib Alam
  • , Peter P. Orth
  • , Armin Rahmani
  • , Thomas Iadecola

Research output: Contribution to journalArticlepeer-review

Abstract

Quantum many-body scar states are highly excited eigenstates of many-body systems that exhibit atypical entanglement and correlation properties relative to typical eigenstates at the same energy density. Scar states also give rise to long-lived coherent dynamics when the system is prepared in a special initial state having finite overlap with them. Many models with exact scar states have been constructed, but the fate of scarred eigenstates and dynamics when these models are perturbed is difficult to study with classical computational techniques. In this work, we propose state preparation protocols that enable the use of quantum computers to study this question. We present protocols both for individual scar states in a particular model, as well as superpositions of them that give rise to coherent dynamics. For superpositions of scar states, we present both a system-size-linear depth unitary and a finite-depth nonunitary state preparation protocol, the latter of which uses measurement and postselection to reduce the circuit depth. For individual scarred eigenstates, we formulate an exact state preparation approach based on matrix product states that yields quasipolynomial-depth circuits, as well as a variational approach with a polynomial-depth ansatz circuit. We also provide proof of principle state-preparation demonstrations on superconducting quantum hardware.

Original languageEnglish (US)
Pages (from-to)1171
Number of pages1
JournalQuantum
Volume7
DOIs
StatePublished - 2023

All Science Journal Classification (ASJC) codes

  • Atomic and Molecular Physics, and Optics
  • Physics and Astronomy (miscellaneous)

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