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Time-crystalline eigenstate order on a quantum processor.
Mi, Xiao; Ippoliti, Matteo; Quintana, Chris; Greene, Ami; Chen, Zijun; Gross, Jonathan; Arute, Frank; Arya, Kunal; Atalaya, Juan; Babbush, Ryan; Bardin, Joseph C; Basso, Joao; Bengtsson, Andreas; Bilmes, Alexander; Bourassa, Alexandre; Brill, Leon; Broughton, Michael; Buckley, Bob B; Buell, David A; Burkett, Brian; Bushnell, Nicholas; Chiaro, Benjamin; Collins, Roberto; Courtney, William; Debroy, Dripto; Demura, Sean; Derk, Alan R; Dunsworth, Andrew; Eppens, Daniel; Erickson, Catherine; Farhi, Edward; Fowler, Austin G; Foxen, Brooks; Gidney, Craig; Giustina, Marissa; Harrigan, Matthew P; Harrington, Sean D; Hilton, Jeremy; Ho, Alan; Hong, Sabrina; Huang, Trent; Huff, Ashley; Huggins, William J; Ioffe, L B; Isakov, Sergei V; Iveland, Justin; Jeffrey, Evan; Jiang, Zhang; Jones, Cody; Kafri, Dvir.
Affiliation
  • Mi X; Google Research, Mountain View, CA, USA.
  • Ippoliti M; Department of Physics, Stanford University, Stanford, CA, USA.
  • Quintana C; Google Research, Mountain View, CA, USA.
  • Greene A; Google Research, Mountain View, CA, USA.
  • Chen Z; Google Research, Mountain View, CA, USA.
  • Gross J; Google Research, Mountain View, CA, USA.
  • Arute F; Google Research, Mountain View, CA, USA.
  • Arya K; Google Research, Mountain View, CA, USA.
  • Atalaya J; Google Research, Mountain View, CA, USA.
  • Babbush R; Google Research, Mountain View, CA, USA.
  • Bardin JC; Google Research, Mountain View, CA, USA.
  • Basso J; Department of Electrical and Computer Engineering, University of Massachusetts, Amherst, MA, USA.
  • Bengtsson A; Google Research, Mountain View, CA, USA.
  • Bilmes A; Google Research, Mountain View, CA, USA.
  • Bourassa A; Google Research, Mountain View, CA, USA.
  • Brill L; Google Research, Mountain View, CA, USA.
  • Broughton M; Pritzker School of Molecular Engineering, University of Chicago, Chicago, IL, USA.
  • Buckley BB; Google Research, Mountain View, CA, USA.
  • Buell DA; Google Research, Mountain View, CA, USA.
  • Burkett B; Google Research, Mountain View, CA, USA.
  • Bushnell N; Google Research, Mountain View, CA, USA.
  • Chiaro B; Google Research, Mountain View, CA, USA.
  • Collins R; Google Research, Mountain View, CA, USA.
  • Courtney W; Google Research, Mountain View, CA, USA.
  • Debroy D; Google Research, Mountain View, CA, USA.
  • Demura S; Google Research, Mountain View, CA, USA.
  • Derk AR; Google Research, Mountain View, CA, USA.
  • Dunsworth A; Google Research, Mountain View, CA, USA.
  • Eppens D; Google Research, Mountain View, CA, USA.
  • Erickson C; Google Research, Mountain View, CA, USA.
  • Farhi E; Google Research, Mountain View, CA, USA.
  • Fowler AG; Google Research, Mountain View, CA, USA.
  • Foxen B; Google Research, Mountain View, CA, USA.
  • Gidney C; Google Research, Mountain View, CA, USA.
  • Giustina M; Google Research, Mountain View, CA, USA.
  • Harrigan MP; Google Research, Mountain View, CA, USA.
  • Harrington SD; Google Research, Mountain View, CA, USA.
  • Hilton J; Google Research, Mountain View, CA, USA.
  • Ho A; Google Research, Mountain View, CA, USA.
  • Hong S; Google Research, Mountain View, CA, USA.
  • Huang T; Google Research, Mountain View, CA, USA.
  • Huff A; Google Research, Mountain View, CA, USA.
  • Huggins WJ; Google Research, Mountain View, CA, USA.
  • Ioffe LB; Google Research, Mountain View, CA, USA.
  • Isakov SV; Google Research, Mountain View, CA, USA.
  • Iveland J; Google Research, Mountain View, CA, USA.
  • Jeffrey E; Google Research, Mountain View, CA, USA.
  • Jiang Z; Google Research, Mountain View, CA, USA.
  • Jones C; Google Research, Mountain View, CA, USA.
  • Kafri D; Google Research, Mountain View, CA, USA.
Nature ; 601(7894): 531-536, 2022 01.
Article in En | MEDLINE | ID: mdl-34847568
ABSTRACT
Quantum many-body systems display rich phase structure in their low-temperature equilibrium states1. However, much of nature is not in thermal equilibrium. Remarkably, it was recently predicted that out-of-equilibrium systems can exhibit novel dynamical phases2-8 that may otherwise be forbidden by equilibrium thermodynamics, a paradigmatic example being the discrete time crystal (DTC)7,9-15. Concretely, dynamical phases can be defined in periodically driven many-body-localized (MBL) systems via the concept of eigenstate order7,16,17. In eigenstate-ordered MBL phases, the entire many-body spectrum exhibits quantum correlations and long-range order, with characteristic signatures in late-time dynamics from all initial states. It is, however, challenging to experimentally distinguish such stable phases from transient phenomena, or from regimes in which the dynamics of a few select states can mask typical behaviour. Here we implement tunable controlled-phase (CPHASE) gates on an array of superconducting qubits to experimentally observe an MBL-DTC and demonstrate its characteristic spatiotemporal response for generic initial states7,9,10. Our work employs a time-reversal protocol to quantify the impact of external decoherence, and leverages quantum typicality to circumvent the exponential cost of densely sampling the eigenspectrum. Furthermore, we locate the phase transition out of the DTC with an experimental finite-size analysis. These results establish a scalable approach to studying non-equilibrium phases of matter on quantum processors.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cold Temperature Type of study: Prognostic_studies Language: En Journal: Nature Year: 2022 Document type: Article Affiliation country: Estados Unidos

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Cold Temperature Type of study: Prognostic_studies Language: En Journal: Nature Year: 2022 Document type: Article Affiliation country: Estados Unidos
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