We construct optimized implementations of the controlled-NOT and other universal two-qubit gates that, unlike many of the previously proposed protocols, are carried out in a single step. The new protocols require tunable interqubit couplings but, in return, show a significant improvement in the quality of gate operations. We make specific predictions for coupled Josephson junction qubits and compare them with the results of recent experiments
Near-term quantum computers are primarily limited by errors in quantum operations (or gates) between...
Working with trapped atoms at close distance to each other, we show that one can implement entanglin...
AbstractThe development of quantum Josephson circuits has created a strong expectation for reliable ...
We construct optimized implementations of the controlled-NOT and other universal two-qubit gates tha...
We carry out a systematic analysis of a pair of coupled qubits, each of which is subject to its own ...
This is the published version, also available here: http://dx.doi.org/10.1103/PhysRevB.73.104521.We ...
The prospect of computational hardware with quantum advantage relies critically on the quality of qu...
Scalable quantum information processing requires the ability to tune multi-qubit interactions. This ...
Quantum information processing is in real systems often limited by dissipation, stemming from remain...
Quantum computers store and manipulate information in individual quantized energy levels. These devi...
We analyze the accuracy of quantum phase gates acting on “0-π qubits” in superconducting circuits, w...
Methods of optimal control are applied to a model system of interacting two-level particles (e.g., s...
Quantum optimal control theory allows to design accurate quantum gates. We employ it to design high-...
The last two decades have seen an enormous increase in the computational power of digital computers....
One of the most challenging problems for the realization of a scalable quantum computer is to design...
Near-term quantum computers are primarily limited by errors in quantum operations (or gates) between...
Working with trapped atoms at close distance to each other, we show that one can implement entanglin...
AbstractThe development of quantum Josephson circuits has created a strong expectation for reliable ...
We construct optimized implementations of the controlled-NOT and other universal two-qubit gates tha...
We carry out a systematic analysis of a pair of coupled qubits, each of which is subject to its own ...
This is the published version, also available here: http://dx.doi.org/10.1103/PhysRevB.73.104521.We ...
The prospect of computational hardware with quantum advantage relies critically on the quality of qu...
Scalable quantum information processing requires the ability to tune multi-qubit interactions. This ...
Quantum information processing is in real systems often limited by dissipation, stemming from remain...
Quantum computers store and manipulate information in individual quantized energy levels. These devi...
We analyze the accuracy of quantum phase gates acting on “0-π qubits” in superconducting circuits, w...
Methods of optimal control are applied to a model system of interacting two-level particles (e.g., s...
Quantum optimal control theory allows to design accurate quantum gates. We employ it to design high-...
The last two decades have seen an enormous increase in the computational power of digital computers....
One of the most challenging problems for the realization of a scalable quantum computer is to design...
Near-term quantum computers are primarily limited by errors in quantum operations (or gates) between...
Working with trapped atoms at close distance to each other, we show that one can implement entanglin...
AbstractThe development of quantum Josephson circuits has created a strong expectation for reliable ...