A major challenge for quantum computation in ion trap systems is scalable integration of error correction and fault tolerance. We analyze a distributed architecture with rapid high-fidelity local control within nodes and entangled links between nodes alleviating long-distance transport. We demonstrate fault-tolerant operator measurements which are used for error correction and nonlocal gates. This scheme is readily applied to linear ion traps which cannot be scaled up beyond a few ions per individual trap but which have access to a probabilistic entanglement mechanism. A proof-of-concept system is presented which is within the reach of current experiment
We consider experimentally feasible chains of trapped ions with pseudo-spin half, and find models th...
Quantum error correction requires the detection of errors via reliable measurements of multiqubit co...
© 2016 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. Optically linked ion traps are pr...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
Fault-tolerant quantum error correction provides a strategy to protect information processed by aqua...
Fault-tolerant quantum error correction provides a strategy to protect information processed by aqua...
Quantum computing has the potential to transform information technology by offering algorithms for c...
41 pags., 32 figs., 7 tabs. -- Open Access funded by Creative Commons Atribution Licence 4.0A quant...
Physical qubits in experimental quantum information processors are inevitably exposed to different s...
Besides being one of the most pristine qubits, the trapped ion technology provides novel ways to gen...
A quantitative assessment of the progress of small prototype quantum processors towards fault-tolera...
Besides being one of the most pristine qubits, the trapped ion technology provides novel ways to gen...
We consider experimentally feasible chains of trapped ions with pseudo-spin half, and find models th...
Quantum error correction requires the detection of errors via reliable measurements of multiqubit co...
© 2016 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. Optically linked ion traps are pr...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
A major challenge for quantum computation in ion trap systems is scalable integration of error corre...
Fault-tolerant quantum error correction provides a strategy to protect information processed by aqua...
Fault-tolerant quantum error correction provides a strategy to protect information processed by aqua...
Quantum computing has the potential to transform information technology by offering algorithms for c...
41 pags., 32 figs., 7 tabs. -- Open Access funded by Creative Commons Atribution Licence 4.0A quant...
Physical qubits in experimental quantum information processors are inevitably exposed to different s...
Besides being one of the most pristine qubits, the trapped ion technology provides novel ways to gen...
A quantitative assessment of the progress of small prototype quantum processors towards fault-tolera...
Besides being one of the most pristine qubits, the trapped ion technology provides novel ways to gen...
We consider experimentally feasible chains of trapped ions with pseudo-spin half, and find models th...
Quantum error correction requires the detection of errors via reliable measurements of multiqubit co...
© 2016 IOP Publishing Ltd and Deutsche Physikalische Gesellschaft. Optically linked ion traps are pr...