Fault-tolerant quantum computing requires initializing the quantum register in a well-defined fiducial state. In solid-state systems, this is typically achieved through thermalization to a cold reservoir, such that the initialization fidelity is fundamentally limited by temperature. Here, we present a method of preparing a fiducial quantum state with a confidence beyond the thermal limit. It is based on real time monitoring of the qubit through a negative-result measurement -- the equivalent of a `Maxwell's demon' that triggers the experiment only upon the appearance of a qubit in the lowest-energy state. We experimentally apply it to initialize an electron spin qubit in silicon, achieving a ground-state initialization fidelity of 98.9(4)%,...
Quantum computing devices are inevitably subject to errors. To leverage quantum technologies for com...
Practical quantum computing will require error rates that are well below what is achievable with phy...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...
A measurement-based quantum feedback protocol is developed for spin state initialization in a gate-d...
Simultaneous near-certain preparation of qubits (quantum bits) in their ground states is a key hurdl...
High-fidelity quantum gate operations are essential for achieving scalable quantum circuits. In spin...
Quantum systems must be prepared, controlled, and measured with high fidelity in order to perform co...
State of the art qubit systems are reaching the gate fidelities required for scalable quantum comput...
The third law of thermodynamics, also known as the Nernst unattainability principle, puts a fundamen...
The impressive progress in fabricating and controlling superconducting devices for quantum informati...
Mitigating errors is a significant challenge for near term quantum computers. One of the most import...
The Gottesman-Kitaev-Preskill (GKP) code encodes a logical qubit into a bosonic system with resilien...
Quantum computers promise to solve models of important physical processes, optimize complex cost fun...
The hope of the quantum computing field is that quantum architectures are able to scale up and reali...
Accurate and precise control of large quantum systems is paramount to achieve practical advantages o...
Quantum computing devices are inevitably subject to errors. To leverage quantum technologies for com...
Practical quantum computing will require error rates that are well below what is achievable with phy...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...
A measurement-based quantum feedback protocol is developed for spin state initialization in a gate-d...
Simultaneous near-certain preparation of qubits (quantum bits) in their ground states is a key hurdl...
High-fidelity quantum gate operations are essential for achieving scalable quantum circuits. In spin...
Quantum systems must be prepared, controlled, and measured with high fidelity in order to perform co...
State of the art qubit systems are reaching the gate fidelities required for scalable quantum comput...
The third law of thermodynamics, also known as the Nernst unattainability principle, puts a fundamen...
The impressive progress in fabricating and controlling superconducting devices for quantum informati...
Mitigating errors is a significant challenge for near term quantum computers. One of the most import...
The Gottesman-Kitaev-Preskill (GKP) code encodes a logical qubit into a bosonic system with resilien...
Quantum computers promise to solve models of important physical processes, optimize complex cost fun...
The hope of the quantum computing field is that quantum architectures are able to scale up and reali...
Accurate and precise control of large quantum systems is paramount to achieve practical advantages o...
Quantum computing devices are inevitably subject to errors. To leverage quantum technologies for com...
Practical quantum computing will require error rates that are well below what is achievable with phy...
Continuous quantum error correction has been found to have certain advantages over discrete quantum ...