Now that it is possible to achieve measurement and control fidelities for individual quantum bits (qubits) above the threshold for fault tolerance, attention is moving towards the difficult task of scaling up the number of physical qubits to the large numbers that are needed for fault-tolerant quantum computing. In this context, quantum-dot-based spin qubits could have substantial advantages over other types of qubit owing to their potential for all-electrical operation and ability to be integrated at high density onto an industrial platform. Initialization, readout and single- and two-qubit gates have been demonstrated in various quantum-dot-based qubit representations. However, as seen with small-scale demonstrations of quantum computers ...
Quantum computing could enable exponential speedups for certain classes of problems by exploiting su...
Quantum computers have gained great attention in the recent past, with their promise for solving exc...
High-fidelity control of quantum bits is paramount for the reliable execution of quantum algorithms ...
Now that it is possible to achieve measurement and control fidelities for individual quantum bits (q...
A quantum computer utilizes the laws of quantum mechanics and performs logic operations on quantum t...
Benchmarking the performance of a quantum computer is of key importance in identifying and reducing ...
Silicon spin qubits satisfy the necessary criteria for quantum information processing. However, a de...
Recent advances in quantum error correction codes for fault-Tolerant quantum computing and physical ...
Future quantum computers capable of solving relevant problems will require a large number of qubits ...
A computer with quantum mechanical building blocks, or qubits, promises a new class of computational...
The understanding of quantum mechanics enabled the development of technology such as transistors and...
Quantum computing platforms are expected to outperform their classical counterparts in solving certa...
Fault-tolerant quantum computers that can solve hard problems rely on quantum error correction1. One...
Recent advances in quantum error correction codes for fault-Tolerant quantum computing and physical ...
Future quantum computers capable of solving relevant problems will require a large number of qubits ...
Quantum computing could enable exponential speedups for certain classes of problems by exploiting su...
Quantum computers have gained great attention in the recent past, with their promise for solving exc...
High-fidelity control of quantum bits is paramount for the reliable execution of quantum algorithms ...
Now that it is possible to achieve measurement and control fidelities for individual quantum bits (q...
A quantum computer utilizes the laws of quantum mechanics and performs logic operations on quantum t...
Benchmarking the performance of a quantum computer is of key importance in identifying and reducing ...
Silicon spin qubits satisfy the necessary criteria for quantum information processing. However, a de...
Recent advances in quantum error correction codes for fault-Tolerant quantum computing and physical ...
Future quantum computers capable of solving relevant problems will require a large number of qubits ...
A computer with quantum mechanical building blocks, or qubits, promises a new class of computational...
The understanding of quantum mechanics enabled the development of technology such as transistors and...
Quantum computing platforms are expected to outperform their classical counterparts in solving certa...
Fault-tolerant quantum computers that can solve hard problems rely on quantum error correction1. One...
Recent advances in quantum error correction codes for fault-Tolerant quantum computing and physical ...
Future quantum computers capable of solving relevant problems will require a large number of qubits ...
Quantum computing could enable exponential speedups for certain classes of problems by exploiting su...
Quantum computers have gained great attention in the recent past, with their promise for solving exc...
High-fidelity control of quantum bits is paramount for the reliable execution of quantum algorithms ...