| Literature DB >> 29191906 |
P Roushan1, C Neill2, J Tangpanitanon3, V M Bastidas3, A Megrant4, R Barends4, Y Chen4, Z Chen2, B Chiaro2, A Dunsworth2, A Fowler4, B Foxen2, M Giustina4, E Jeffrey4, J Kelly4, E Lucero4, J Mutus4, M Neeley4, C Quintana2, D Sank4, A Vainsencher4, J Wenner2, T White4, H Neven4, D G Angelakis5,6, J Martinis4,2.
Abstract
Quantized eigenenergies and their associated wave functions provide extensive information for predicting the physics of quantum many-body systems. Using a chain of nine superconducting qubits, we implement a technique for resolving the energy levels of interacting photons. We benchmark this method by capturing the main features of the intricate energy spectrum predicted for two-dimensional electrons in a magnetic field-the Hofstadter butterfly. We introduce disorder to study the statistics of the energy levels of the system as it undergoes the transition from a thermalized to a localized phase. Our work introduces a many-body spectroscopy technique to study quantum phases of matter.Year: 2017 PMID: 29191906 DOI: 10.1126/science.aao1401
Source DB: PubMed Journal: Science ISSN: 0036-8075 Impact factor: 47.728