Efficient Quantum Cooling Algorithm for Fermionic Systems

ORAL

Abstract

We present a cooling algorithm for ground state preparation of fermionic Hamiltonians. Our algorithm makes use of the Hamiltonian simulation of the considered system coupled to an ancillary fridge, which is regularly reset to its known ground state. We derive suitable interaction Hamiltonians that originate from ladder operators of the free theory and initiate resonant gaps between system and fridge. We further propose a spectroscopic scan to find the relevant eigenenergies of the system using energy measurements on the fridge. With these insights, we design a ground state cooling algorithm for fermionic systems that is efficient, i.e. its runtime is polynomial in the system size, as long as the initial state is prepared in a low energy sector of polynomial size. We achieve the latter via a fast, quasi-adiabatic sweep from a parameter regime whose ground state can be easily prepared. We generalize the algorithm to prepare thermal states and demonstrate our findings on the Fermi-Hubbard model.

*This work received support from the German Federal Ministry of Education and Research via the funding program quantum technologies - from basic research to the market under contract number 13N16067 "EQUAHUMO". It is also part of the Munich Quantum Valley, which is supported by the Bavarian state government with funds from the Hightech Agenda Bayern Plus.

Publication: https://arxiv.org/abs/2403.14506

Presenters

  • Michael Josef Hartmann

    • Friedrich-Alexander University Erlangen-Nuremberg

Authors

  • Lucas Marti

    • Friedrich-Alexander University Erlangen-Nuremberg
    • Friedrich-Alexander Universität
  • Refik Mansuroglu

    • Friedrich-Alexander University Erlangen-Nuremberg
  • Michael Josef Hartmann

    • Friedrich-Alexander University Erlangen-Nuremberg