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Formation of robust bound states of interacting microwave photons.
Morvan, A; Andersen, T I; Mi, X; Neill, C; Petukhov, A; Kechedzhi, K; Abanin, D A; Michailidis, A; Acharya, R; Arute, F; Arya, K; Asfaw, A; Atalaya, J; Bardin, J C; Basso, J; Bengtsson, A; Bortoli, G; Bourassa, A; Bovaird, J; Brill, L; Broughton, M; Buckley, B B; Buell, D A; Burger, T; Burkett, B; Bushnell, N; Chen, Z; Chiaro, B; Collins, R; Conner, P; Courtney, W; Crook, A L; Curtin, B; Debroy, D M; Del Toro Barba, A; Demura, S; Dunsworth, A; Eppens, D; Erickson, C; Faoro, L; Farhi, E; Fatemi, R; Flores Burgos, L; Forati, E; Fowler, A G; Foxen, B; Giang, W; Gidney, C; Gilboa, D; Giustina, M.
Afiliação
  • Morvan A; Google Research, Mountain View, CA, USA.
  • Andersen TI; Google Research, Mountain View, CA, USA.
  • Mi X; Google Research, Mountain View, CA, USA.
  • Neill C; Google Research, Mountain View, CA, USA.
  • Petukhov A; Google Research, Mountain View, CA, USA.
  • Kechedzhi K; Google Research, Mountain View, CA, USA.
  • Abanin DA; Google Research, Mountain View, CA, USA.
  • Michailidis A; Department of Theoretical Physics, University of Geneva, Geneva, Switzerland.
  • Acharya R; Department of Theoretical Physics, University of Geneva, Geneva, Switzerland.
  • Arute F; Google Research, Mountain View, CA, USA.
  • Arya K; Google Research, Mountain View, CA, USA.
  • Asfaw A; Google Research, Mountain View, CA, USA.
  • Atalaya J; Google Research, Mountain View, CA, USA.
  • Bardin JC; Google Research, Mountain View, CA, USA.
  • Basso J; Google Research, Mountain View, CA, USA.
  • Bengtsson A; Department of Electrical and Computer Engineering, University of Massachusetts, Amherst, MA, USA.
  • Bortoli G; Google Research, Mountain View, CA, USA.
  • Bourassa A; Google Research, Mountain View, CA, USA.
  • Bovaird J; Google Research, Mountain View, CA, USA.
  • Brill L; Google Research, Mountain View, CA, USA.
  • Broughton M; Google Research, Mountain View, CA, USA.
  • Buckley BB; Google Research, Mountain View, CA, USA.
  • Buell DA; Google Research, Mountain View, CA, USA.
  • Burger T; Google Research, Mountain View, CA, USA.
  • Burkett B; Google Research, Mountain View, CA, USA.
  • Bushnell N; Google Research, Mountain View, CA, USA.
  • Chen Z; Google Research, Mountain View, CA, USA.
  • Chiaro B; Google Research, Mountain View, CA, USA.
  • Collins R; Google Research, Mountain View, CA, USA.
  • Conner P; Google Research, Mountain View, CA, USA.
  • Courtney W; Google Research, Mountain View, CA, USA.
  • Crook AL; Google Research, Mountain View, CA, USA.
  • Curtin B; Google Research, Mountain View, CA, USA.
  • Debroy DM; Google Research, Mountain View, CA, USA.
  • Del Toro Barba A; Google Research, Mountain View, CA, USA.
  • Demura S; 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.
  • Faoro L; Google Research, Mountain View, CA, USA.
  • Farhi E; Google Research, Mountain View, CA, USA.
  • Fatemi R; Google Research, Mountain View, CA, USA.
  • Flores Burgos L; Google Research, Mountain View, CA, USA.
  • Forati E; Google Research, Mountain View, CA, USA.
  • Fowler AG; Google Research, Mountain View, CA, USA.
  • Foxen B; Google Research, Mountain View, CA, USA.
  • Giang W; Google Research, Mountain View, CA, USA.
  • Gidney C; Google Research, Mountain View, CA, USA.
  • Gilboa D; Google Research, Mountain View, CA, USA.
  • Giustina M; Google Research, Mountain View, CA, USA.
Nature ; 612(7939): 240-245, 2022 12.
Article em En | MEDLINE | ID: mdl-36477133
ABSTRACT
Systems of correlated particles appear in many fields of modern science and represent some of the most intractable computational problems in nature. The computational challenge in these systems arises when interactions become comparable to other energy scales, which makes the state of each particle depend on all other particles1. The lack of general solutions for the three-body problem and acceptable theory for strongly correlated electrons shows that our understanding of correlated systems fades when the particle number or the interaction strength increases. One of the hallmarks of interacting systems is the formation of multiparticle bound states2-9. Here we develop a high-fidelity parameterizable fSim gate and implement the periodic quantum circuit of the spin-½ XXZ model in a ring of 24 superconducting qubits. We study the propagation of these excitations and observe their bound nature for up to five photons. We devise a phase-sensitive method for constructing the few-body spectrum of the bound states and extract their pseudo-charge by introducing a synthetic flux. By introducing interactions between the ring and additional qubits, we observe an unexpected resilience of the bound states to integrability breaking. This finding goes against the idea that bound states in non-integrable systems are unstable when their energies overlap with the continuum spectrum. Our work provides experimental evidence for bound states of interacting photons and discovers their stability beyond the integrability limit.

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Health_economic_evaluation / Prognostic_studies Idioma: En Revista: Nature Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Estados Unidos

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Tipo de estudo: Health_economic_evaluation / Prognostic_studies Idioma: En Revista: Nature Ano de publicação: 2022 Tipo de documento: Article País de afiliação: Estados Unidos