Literature DB >> 22170609

Implementation of a Toffoli gate with superconducting circuits.

A Fedorov1, L Steffen, M Baur, M P da Silva, A Wallraff.   

Abstract

The Toffoli gate is a three-quantum-bit (three-qubit) operation that inverts the state of a target qubit conditioned on the state of two control qubits. It makes universal reversible classical computation possible and, together with a Hadamard gate, forms a universal set of gates in quantum computation. It is also a key element in quantum error correction schemes. The Toffoli gate has been implemented in nuclear magnetic resonance, linear optics and ion trap systems. Experiments with superconducting qubits have also shown significant progress recently: two-qubit algorithms and two-qubit process tomography have been implemented, three-qubit entangled states have been prepared, first steps towards quantum teleportation have been taken and work on quantum computing architectures has been done. Implementation of the Toffoli gate with only single- and two-qubit gates requires six controlled-NOT gates and ten single-qubit operations, and has not been realized in any system owing to current limits on coherence. Here we implement a Toffoli gate with three superconducting transmon qubits coupled to a microwave resonator. By exploiting the third energy level of the transmon qubits, we have significantly reduced the number of elementary gates needed for the implementation of the Toffoli gate, relative to that required in theoretical proposals using only two-level systems. Using full process tomography and Monte Carlo process certification, we completely characterize the Toffoli gate acting on three independent qubits, measuring a fidelity of 68.5 ± 0.5 per cent. A similar approach to realizing characteristic features of a Toffoli-class gate has been demonstrated with two qubits and a resonator and achieved a limited characterization considering only the phase fidelity. Our results reinforce the potential of macroscopic superconducting qubits for the implementation of complex quantum operations with the possibility of quantum error correction.

Year:  2011        PMID: 22170609     DOI: 10.1038/nature10713

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


  15 in total

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2.  Practical characterization of quantum devices without tomography.

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Journal:  Phys Rev Lett       Date:  2011-11-16       Impact factor: 9.161

3.  Realization of three-qubit quantum error correction with superconducting circuits.

Authors:  M D Reed; L DiCarlo; S E Nigg; L Sun; L Frunzio; S M Girvin; R J Schoelkopf
Journal:  Nature       Date:  2012-02-01       Impact factor: 49.962

4.  Preparation and measurement of three-qubit entanglement in a superconducting circuit.

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Journal:  Nature       Date:  2010-09-30       Impact factor: 49.962

5.  Generation of three-qubit entangled states using superconducting phase qubits.

Authors:  Matthew Neeley; Radoslaw C Bialczak; M Lenander; E Lucero; Matteo Mariantoni; A D O'Connell; D Sank; H Wang; M Weides; J Wenner; Y Yin; T Yamamoto; A N Cleland; John M Martinis
Journal:  Nature       Date:  2010-09-30       Impact factor: 49.962

6.  Realization of quantum error correction.

Authors:  J Chiaverini; D Leibfried; T Schaetz; M D Barrett; R B Blakestad; J Britton; W M Itano; J D Jost; E Knill; C Langer; R Ozeri; D J Wineland
Journal:  Nature       Date:  2004-12-02       Impact factor: 49.962

7.  Coupling superconducting qubits via a cavity bus.

Authors:  J Majer; J M Chow; J M Gambetta; Jens Koch; B R Johnson; J A Schreier; L Frunzio; D I Schuster; A A Houck; A Wallraff; A Blais; M H Devoret; S M Girvin; R J Schoelkopf
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8.  Two-qubit state tomography using a joint dispersive readout.

Authors:  S Filipp; P Maurer; P J Leek; M Baur; R Bianchetti; J M Fink; M Göppl; L Steffen; J M Gambetta; A Blais; A Wallraff
Journal:  Phys Rev Lett       Date:  2009-05-22       Impact factor: 9.161

9.  Elementary gates for quantum computation.

Authors: 
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Authors:  Matteo Mariantoni; H Wang; T Yamamoto; M Neeley; Radoslaw C Bialczak; Y Chen; M Lenander; Erik Lucero; A D O'Connell; D Sank; M Weides; J Wenner; Y Yin; J Zhao; A N Korotkov; A N Cleland; John M Martinis
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  20 in total

1.  Thermodynamics: The fridge gate.

Authors:  Renato Renner
Journal:  Nature       Date:  2012-02-08       Impact factor: 49.962

2.  Realization of three-qubit quantum error correction with superconducting circuits.

Authors:  M D Reed; L DiCarlo; S E Nigg; L Sun; L Frunzio; S M Girvin; R J Schoelkopf
Journal:  Nature       Date:  2012-02-01       Impact factor: 49.962

3.  Logic reversibility and thermodynamic irreversibility demonstrated by DNAzyme-based Toffoli and Fredkin logic gates.

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4.  Control aspects of quantum computing using pure and mixed states.

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5.  Hybrid circuit cavity quantum electrodynamics with a micromechanical resonator.

Authors:  J-M Pirkkalainen; S U Cho; Jian Li; G S Paraoanu; P J Hakonen; M A Sillanpää
Journal:  Nature       Date:  2013-02-14       Impact factor: 49.962

6.  Fast universal quantum gates on microwave photons with all-resonance operations in circuit QED.

Authors:  Ming Hua; Ming-Jie Tao; Fu-Guo Deng
Journal:  Sci Rep       Date:  2015-03-19       Impact factor: 4.379

7.  Two-dimensional lattice gauge theories with superconducting quantum circuits.

Authors:  D Marcos; P Widmer; E Rico; M Hafezi; P Rabl; U-J Wiese; P Zoller
Journal:  Ann Phys (N Y)       Date:  2014-12       Impact factor: 2.730

8.  Controllable high-fidelity quantum state transfer and entanglement generation in circuit QED.

Authors:  Peng Xu; Xu-Chen Yang; Feng Mei; Zheng-Yuan Xue
Journal:  Sci Rep       Date:  2016-01-25       Impact factor: 4.379

9.  Artificial Life in Quantum Technologies.

Authors:  Unai Alvarez-Rodriguez; Mikel Sanz; Lucas Lamata; Enrique Solano
Journal:  Sci Rep       Date:  2016-02-08       Impact factor: 4.379

10.  Hybrid Toffoli gate on photons and quantum spins.

Authors:  Ming-Xing Luo; Song-Ya Ma; Xiu-Bo Chen; Xiaojun Wang
Journal:  Sci Rep       Date:  2015-11-16       Impact factor: 4.379

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