Literature DB >> 12660777

Realization of the Cirac-Zoller controlled-NOT quantum gate.

Ferdinand Schmidt-Kaler1, Hartmut Häffner, Mark Riebe, Stephan Gulde, Gavin P T Lancaster, Thomas Deuschle, Christoph Becher, Christian F Roos, Jürgen Eschner, Rainer Blatt.   

Abstract

Quantum computers have the potential to perform certain computational tasks more efficiently than their classical counterparts. The Cirac-Zoller proposal for a scalable quantum computer is based on a string of trapped ions whose electronic states represent the quantum bits of information (or qubits). In this scheme, quantum logical gates involving any subset of ions are realized by coupling the ions through their collective quantized motion. The main experimental step towards realizing the scheme is to implement the controlled-NOT (CNOT) gate operation between two individual ions. The CNOT quantum logical gate corresponds to the XOR gate operation of classical logic that flips the state of a target bit conditioned on the state of a control bit. Here we implement a CNOT quantum gate according to the Cirac-Zoller proposal. In our experiment, two 40Ca+ ions are held in a linear Paul trap and are individually addressed using focused laser beams; the qubits are represented by superpositions of two long-lived electronic states. Our work relies on recently developed precise control of atomic phases and the application of composite pulse sequences adapted from nuclear magnetic resonance techniques.

Entities:  

Year:  2003        PMID: 12660777     DOI: 10.1038/nature01494

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


  18 in total

1.  Towards quantum chemistry on a quantum computer.

Authors:  B P Lanyon; J D Whitfield; G G Gillett; M E Goggin; M P Almeida; I Kassal; J D Biamonte; M Mohseni; B J Powell; M Barbieri; A Aspuru-Guzik; A G White
Journal:  Nat Chem       Date:  2010-01-10       Impact factor: 24.427

2.  Non-destructive state detection for quantum logic spectroscopy of molecular ions.

Authors:  Fabian Wolf; Yong Wan; Jan C Heip; Florian Gebert; Chunyan Shi; Piet O Schmidt
Journal:  Nature       Date:  2016-02-08       Impact factor: 49.962

3.  Nanofriction in cold ion traps.

Authors:  A Benassi; A Vanossi; E Tosatti
Journal:  Nat Commun       Date:  2011       Impact factor: 14.919

4.  Quantum information: Microwave ion-trap quantum computing.

Authors:  Winfried K Hensinger
Journal:  Nature       Date:  2011-08-10       Impact factor: 49.962

5.  Coherent spin-exchange via a quantum mediator.

Authors:  Timothy Alexander Baart; Takafumi Fujita; Christian Reichl; Werner Wegscheider; Lieven Mark Koenraad Vandersypen
Journal:  Nat Nanotechnol       Date:  2016-10-10       Impact factor: 39.213

6.  Long-distance coherent coupling in a quantum dot array.

Authors:  F R Braakman; P Barthelemy; C Reichl; W Wegscheider; L M K Vandersypen
Journal:  Nat Nanotechnol       Date:  2013-04-28       Impact factor: 39.213

7.  High-fidelity laser-free universal control of trapped ion qubits.

Authors:  R Srinivas; S C Burd; H M Knaack; R T Sutherland; A Kwiatkowski; S Glancy; E Knill; D J Wineland; D Leibfried; A C Wilson; D T C Allcock; D H Slichter
Journal:  Nature       Date:  2021-09-08       Impact factor: 69.504

8.  Versatile, dynamically balanced low-noise optical-field manipulator using a coherently prepared atomic medium.

Authors:  Yan Li; Chengjie Zhu; L Deng; E W Hagley; W R Garrett
Journal:  Opt Lett       Date:  2015-11-15       Impact factor: 3.776

9.  Adding control to arbitrary unknown quantum operations.

Authors:  Xiao-Qi Zhou; Timothy C Ralph; Pruet Kalasuwan; Mian Zhang; Alberto Peruzzo; Benjamin P Lanyon; Jeremy L O'Brien
Journal:  Nat Commun       Date:  2011-08-02       Impact factor: 14.919

10.  Photonic ququart logic assisted by the cavity-QED system.

Authors:  Ming-Xing Luo; Yun Deng; Hui-Ran Li; Song-Ya Ma
Journal:  Sci Rep       Date:  2015-08-14       Impact factor: 4.379

View more

北京卡尤迪生物科技股份有限公司 © 2022-2023.