A key ingredient for a quantum computer is the accurate manipulation of qubits in order to generate high-fidelity gates. For S-T0 qubits in semiconductor quantum dots, which allow purely electric control with moderate bandwidth requirements, single-qubit gates with fidelities above the error correction threshold were demonstrated, whereas two-qubit operations have not reached the required fidelity [1-2].Here, we numerically optimize a complete two-qubit gate set under realistic experimental constraints, exploiting exchange coupling while also accounting for capacitive coupling. We obtain fidelities of 99.9% for GaAs, while about 99.99% are achieved with vanishing magnetic field noise as in Si. We suppress leakage to 10−5 by choosing high in...
The promise of quantum information technology hinges on the ability to control large numbers of qubi...
Recent achievements in the field of gate defined semiconductor quantum dots reinforce the concept of...
Recent achievements in the field of gate-defined semiconductor quantum dots reinforce the concept of...
The implementation of high fidelity two-qubit gates is a bottleneck in the progress toward universal...
Abstract The implementation of high fidelity two-qubit gates is a bottleneck in the progress toward ...
A key ingredient for fault-tolerant quantum computers are sufficiently accurate logic gates on singl...
Semiconductor spin qubits have recently seen major advances in coherence time and control fidelities...
Single-qubit operations on singlet-triplet qubits in GaAs double quantum dots have not yet reached t...
Motivated by recent experiments of Zajac et al. [Science 359, 439 (2018)], we theoretically describe...
The spin states of single electrons in gate-defined quantum dots satisfy crucial requirements for a ...
The spin states of single electrons in gate-defined quantum dots satisfy crucial requirements for a ...
We describe high-fidelity entangling gates between singlet-triplet qubits (STQs) which are coupled v...
Spin qubits in quantum dots define an attractive platform for quantum information because of their c...
We investigate capacitively-coupled exchange-only two-qubit quantum gates based on quantum dots. For...
Practical Quantum computing hinges on the ability to control large numbers of qubits with high fidel...
The promise of quantum information technology hinges on the ability to control large numbers of qubi...
Recent achievements in the field of gate defined semiconductor quantum dots reinforce the concept of...
Recent achievements in the field of gate-defined semiconductor quantum dots reinforce the concept of...
The implementation of high fidelity two-qubit gates is a bottleneck in the progress toward universal...
Abstract The implementation of high fidelity two-qubit gates is a bottleneck in the progress toward ...
A key ingredient for fault-tolerant quantum computers are sufficiently accurate logic gates on singl...
Semiconductor spin qubits have recently seen major advances in coherence time and control fidelities...
Single-qubit operations on singlet-triplet qubits in GaAs double quantum dots have not yet reached t...
Motivated by recent experiments of Zajac et al. [Science 359, 439 (2018)], we theoretically describe...
The spin states of single electrons in gate-defined quantum dots satisfy crucial requirements for a ...
The spin states of single electrons in gate-defined quantum dots satisfy crucial requirements for a ...
We describe high-fidelity entangling gates between singlet-triplet qubits (STQs) which are coupled v...
Spin qubits in quantum dots define an attractive platform for quantum information because of their c...
We investigate capacitively-coupled exchange-only two-qubit quantum gates based on quantum dots. For...
Practical Quantum computing hinges on the ability to control large numbers of qubits with high fidel...
The promise of quantum information technology hinges on the ability to control large numbers of qubi...
Recent achievements in the field of gate defined semiconductor quantum dots reinforce the concept of...
Recent achievements in the field of gate-defined semiconductor quantum dots reinforce the concept of...