Optimal control can be used to significantly improve multi-qubit gates in quantum information processing hardware architectures based on superconducting circuit quantum electrodynamics. We apply this approach not only to dispersive gates of two qubits inside a cavity, but, more generally, to architectures based on two-dimensional (2D) arrays of cavities and qubits. For high-fidelity gate operations, simultaneous evolutions of controls and couplings in the two coupling dimensions of cavity grids are shown to be significantly faster than conventional sequential implementations. Even under experimentally realistic conditions speedups by a factor of three can be gained. The methods immediately scale to large grids and indirect gates between arb...
Quantum optimal control theory is the science of steering quantum systems. In this thesis we show ho...
In superconducting quantum information, qubits are made from low-loss superconducting capacitors, in...
The prospect of computational hardware with quantum advantage relies critically on the quality of qu...
Optimization of the fidelity of control operations is of critical importance in the pursuit of fault...
With recent improvements in coherence times, superconducting transmon qubits have become a promising...
Fast and accurate two-qubit gates are a key requirement to perform complex algorithms on current qua...
This thesis describes our work on optimizing quantum control and scaling up quantum computers. We de...
Quantum technologies promise to improve the performance of a whole range of computational processes....
In continuous-variable quantum computing with qubits encoded in the infinite-dimensional Hilbert spa...
Quantum control is an important prerequisite for quantum devices [1]. A major obstacle is the fact t...
There is a recent surge of interest and insights regarding the interplay of quantum optimal control ...
Superconducting circuits are one of the leading architectures in quantum computing. To undertake qua...
Quantum Optics and Solid State, 18-19 January 2021, virtual conference. -- Book of abstracs 43 p. --...
In this paper, we demonstrate that optimal control algorithms can be used to speed up the implementa...
In optimal quantum control (OQC), a target quantum state of matter is achieved by tailoring the phas...
Quantum optimal control theory is the science of steering quantum systems. In this thesis we show ho...
In superconducting quantum information, qubits are made from low-loss superconducting capacitors, in...
The prospect of computational hardware with quantum advantage relies critically on the quality of qu...
Optimization of the fidelity of control operations is of critical importance in the pursuit of fault...
With recent improvements in coherence times, superconducting transmon qubits have become a promising...
Fast and accurate two-qubit gates are a key requirement to perform complex algorithms on current qua...
This thesis describes our work on optimizing quantum control and scaling up quantum computers. We de...
Quantum technologies promise to improve the performance of a whole range of computational processes....
In continuous-variable quantum computing with qubits encoded in the infinite-dimensional Hilbert spa...
Quantum control is an important prerequisite for quantum devices [1]. A major obstacle is the fact t...
There is a recent surge of interest and insights regarding the interplay of quantum optimal control ...
Superconducting circuits are one of the leading architectures in quantum computing. To undertake qua...
Quantum Optics and Solid State, 18-19 January 2021, virtual conference. -- Book of abstracs 43 p. --...
In this paper, we demonstrate that optimal control algorithms can be used to speed up the implementa...
In optimal quantum control (OQC), a target quantum state of matter is achieved by tailoring the phas...
Quantum optimal control theory is the science of steering quantum systems. In this thesis we show ho...
In superconducting quantum information, qubits are made from low-loss superconducting capacitors, in...
The prospect of computational hardware with quantum advantage relies critically on the quality of qu...