Topologically protected quantum bits using Josephson junction arrays
- 1 January 2002
- journal article
- letter
- Published by Springer Nature in Nature
- Vol. 415 (6871) , 503-506
- https://doi.org/10.1038/415503a
Abstract
All physical implementations of quantum bits (or qubits, the logical elements in a putative quantum computer) must overcome conflicting requirements: the qubits should be manipulable through external signals, while remaining isolated from their environment. Proposals based on quantum optics emphasize optimal isolation1,2,3, while those following the solid-state route exploit the variability and scalability of nanoscale fabrication techniques4,5,6,7,8. Recently, various designs using superconducting structures have been successfully tested for quantum coherent operation9,10,11, however, the ultimate goal of reaching coherent evolution over thousands of elementary operations remains a formidable task. Protecting qubits from decoherence by exploiting topological stability is a qualitatively new proposal12 that holds promise for long decoherence times, but its physical implementation has remained unclear. Here we show how strongly correlated systems developing an isolated twofold degenerate quantum dimer liquid ground state can be used in the construction of topologically stable qubits; we discuss their implementation using Josephson junction arrays. Although the complexity of their architecture challenges the technology base available today, such topological qubits greatly benefit from their built-in fault-tolerance.Keywords
All Related Versions
This publication has 23 references indexed in Scilit:
- Short-ranged resonating valence bond physics, quantum dimer models, and Ising gauge theoriesPhysical Review B, 2001
- Josephson Persistent-Current QubitScience, 1999
- Spin-liquid phase of the multiple-spin exchange Hamiltonian on the triangular latticePhysical Review B, 1999
- Quantum computation with quantum dotsPhysical Review A, 1998
- Mean-field theory of spin-liquid states with finite energy gap and topological ordersPhysical Review B, 1991
- Superconductivity in the liquid-dimer valence-bond statePhysical Review B, 1989
- Superconductivity and the Quantum Hard-Core Dimer GasPhysical Review Letters, 1988
- Topology of the resonating valence-bond state: Solitons and high-superconductivityPhysical Review B, 1987
- The Resonating Valence Bond State in La 2 CuO 4 and SuperconductivityScience, 1987
- Phase diagrams of lattice gauge theories with Higgs fieldsPhysical Review D, 1979