We demonstrate coherent quantum control of a single spin driven by the motion of a mechanical resonator. The motion of a mechanical resonator is magnetically coupled to the electronic spin of a single nitrogen-vacancy center in diamond. Synchronization of spin-addressing protocols to the motion of the driven oscillator is used to fully exploit the coherence of this hybrid mechanical-spin system. We demonstrate applications of this coherent mechanical spin-control technique to nanoscale scanning magnetometry
We report on room-temperature coherent manipulation of the spin of a single nitrogen-vacancy center ...
International audienceThe control of single spins in solids is a key but challenging step for any sp...
We study the parametric interaction between a single nitrogen-vacancy electronic spin and a diamond ...
We demonstrate coherent quantum control of a single spin driven by the motion of a mechanical resona...
Mechanical systems can be influenced by a wide variety of small forces, ranging from gravitational t...
The spin state of the nitrogen-vacancy (NV) center in diamond offers a promising platform for the de...
Hybrid spin-oscillator systems, formed by single spins coupled to mechanical oscillators, have attra...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
Achieving time-domain control of quantum states with atomic-scale spatial resolution in nanostructur...
The study of individual quantum systems in solids, for use as quantum bits (qubits) and probes of de...
A fully functional quantum computer must contain at least two important components: a quantum memory...
Quantum devices for sensing and computing applications require coherent quantum systems, which can b...
The nitrogen-vacancy (NV) center in diamond has garnered great interest over the past decade as its ...
We report on single electronic spins coupled to the motion of mechanical resonators by a novel mecha...
The coherent control of spin qubits forms the basis of many applications in quantum information proc...
We report on room-temperature coherent manipulation of the spin of a single nitrogen-vacancy center ...
International audienceThe control of single spins in solids is a key but challenging step for any sp...
We study the parametric interaction between a single nitrogen-vacancy electronic spin and a diamond ...
We demonstrate coherent quantum control of a single spin driven by the motion of a mechanical resona...
Mechanical systems can be influenced by a wide variety of small forces, ranging from gravitational t...
The spin state of the nitrogen-vacancy (NV) center in diamond offers a promising platform for the de...
Hybrid spin-oscillator systems, formed by single spins coupled to mechanical oscillators, have attra...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Nuclear Science and Engineering...
Achieving time-domain control of quantum states with atomic-scale spatial resolution in nanostructur...
The study of individual quantum systems in solids, for use as quantum bits (qubits) and probes of de...
A fully functional quantum computer must contain at least two important components: a quantum memory...
Quantum devices for sensing and computing applications require coherent quantum systems, which can b...
The nitrogen-vacancy (NV) center in diamond has garnered great interest over the past decade as its ...
We report on single electronic spins coupled to the motion of mechanical resonators by a novel mecha...
The coherent control of spin qubits forms the basis of many applications in quantum information proc...
We report on room-temperature coherent manipulation of the spin of a single nitrogen-vacancy center ...
International audienceThe control of single spins in solids is a key but challenging step for any sp...
We study the parametric interaction between a single nitrogen-vacancy electronic spin and a diamond ...