Literature DB >> 34163052

Accurately computing the electronic properties of a quantum ring.

C Neill1, T McCourt1, X Mi1, Z Jiang1, M Y Niu1, W Mruczkiewicz1, I Aleiner1, F Arute1, K Arya1, J Atalaya1, R Babbush1, J C Bardin1,2, R Barends1, A Bengtsson1, A Bourassa1,3, M Broughton1, B B Buckley1, D A Buell1, B Burkett1, N Bushnell1, J Campero1, Z Chen1, B Chiaro1, R Collins1, W Courtney1, S Demura1, A R Derk1, A Dunsworth1, D Eppens1, C Erickson1, E Farhi1, A G Fowler1, B Foxen1, C Gidney1, M Giustina1, J A Gross1, M P Harrigan1, S D Harrington1, J Hilton1, A Ho1, S Hong1, T Huang1, W J Huggins1, S V Isakov1, M Jacob-Mitos1, E Jeffrey1, C Jones1, D Kafri1, K Kechedzhi1, J Kelly1, S Kim1, P V Klimov1, A N Korotkov1,4, F Kostritsa1, D Landhuis1, P Laptev1, E Lucero1, O Martin1, J R McClean1, M McEwen1,5, A Megrant1, K C Miao1, M Mohseni1, J Mutus1, O Naaman1, M Neeley1, M Newman1, T E O'Brien1, A Opremcak1, E Ostby1, B Pató1, A Petukhov1, C Quintana1, N Redd1, N C Rubin1, D Sank1, K J Satzinger1, V Shvarts1, D Strain1, M Szalay1, M D Trevithick1, B Villalonga1, T C White1, Z Yao1, P Yeh1, A Zalcman1, H Neven1, S Boixo1, L B Ioffe1, P Roushan6, Y Chen7, V Smelyanskiy8.   

Abstract

A promising approach to study condensed-matter systems is to simulate them on an engineered quantum platform1-4. However, the accuracy needed to outperform classical methods has not been achieved so far. Here, using 18 superconducting qubits, we provide an experimental blueprint for an accurate condensed-matter simulator and demonstrate how to investigate fundamental electronic properties. We benchmark the underlying method by reconstructing the single-particle band structure of a one-dimensional wire. We demonstrate nearly complete mitigation of decoherence and readout errors, and measure the energy eigenvalues of this wire with an error of approximately 0.01 rad, whereas typical energy scales are of the order of 1 rad. Insight into the fidelity of this algorithm is gained by highlighting the robust properties of a Fourier transform, including the ability to resolve eigenenergies with a statistical uncertainty of 10-4 rad. We also synthesize magnetic flux and disordered local potentials, which are two key tenets of a condensed-matter system. When sweeping the magnetic flux we observe avoided level crossings in the spectrum, providing a detailed fingerprint of the spatial distribution of local disorder. By combining these methods we reconstruct electronic properties of the eigenstates, observing persistent currents and a strong suppression of conductance with added disorder. Our work describes an accurate method for quantum simulation5,6 and paves the way to study new quantum materials with superconducting qubits.

Entities:  

Year:  2021        PMID: 34163052     DOI: 10.1038/s41586-021-03576-2

Source DB:  PubMed          Journal:  Nature        ISSN: 0028-0836            Impact factor:   49.962


  4 in total

1.  Quantum algorithm for electronic band structures with local tight-binding orbitals.

Authors:  Kyle Sherbert; Anooja Jayaraj; Marco Buongiorno Nardelli
Journal:  Sci Rep       Date:  2022-06-14       Impact factor: 4.996

2.  Qubit readout error mitigation with bit-flip averaging.

Authors:  Alistair W R Smith; Kiran E Khosla; Chris N Self; M S Kim
Journal:  Sci Adv       Date:  2021-11-17       Impact factor: 14.136

3.  Small-world complex network generation on a digital quantum processor.

Authors:  Eric B Jones; Logan E Hillberry; Matthew T Jones; Mina Fasihi; Pedram Roushan; Zhang Jiang; Alan Ho; Charles Neill; Eric Ostby; Peter Graf; Eliot Kapit; Lincoln D Carr
Journal:  Nat Commun       Date:  2022-08-02       Impact factor: 17.694

4.  Simulating groundstate and dynamical quantum phase transitions on a superconducting quantum computer.

Authors:  James Dborin; Vinul Wimalaweera; F Barratt; Eric Ostby; Thomas E O'Brien; A G Green
Journal:  Nat Commun       Date:  2022-10-10       Impact factor: 17.694

  4 in total

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