We propose to directly and quantum-coherently couple a superconducting transmon qubit to magnons - the quanta of the collective spin excitations, in a nearby magnetic particle. The magnet's stray field couples to the qubit via a superconducting quantum interference device. We predict a resonant magnon-qubit exchange and a nonlinear radiation-pressure interaction that are both stronger than dissipation rates and tunable by an external flux bias. We additionally demonstrate a quantum control scheme that generates magnon-qubit entanglement and magnonic Schrödinger cat states with high fidelity.QN/Blanter GroupQN/Bauer Grou
Recent advances of semiconductor device miniaturization strongly necessitate to take into account th...
The field of quantum computation and simulation has its origins in the early 1980s, when the limitat...
We propose to encode a register of quantum bits in different collective electron spin wave excitatio...
We propose to directly and quantum-coherently couple a superconducting transmon qubit to magnons - t...
We propose and numerically evaluate a protocol to generate an arbitrary quantum state of the magneti...
AbstractThe techniques of microwave quantum optics are applied to collective spin excitations in a m...
Massive mechanical resonators operating at the quantum scale can enable a large variety of applicati...
We propose and numerically evaluate a protocol to generate an arbitrary quantum state of the magneti...
This thesis explores nonlinear couplings in superconducting circuits with the purpose of achieving q...
Superconducting qubits are fabricated "loss-free" electrical circuits on a chip with size features o...
Quantum magnonics is an emerging research field, with great potential for applications in magnon bas...
The detection of magnons and their quantum properties, especially in antiferromagnetic (AFM) materia...
The ability to manipulate entanglement between multiple spatially separated qubits is essential for ...
A hybrid system established by the direct interaction between a magnon mode and a superconducting tr...
Coupled microwave photon-magnon hybrid systems offer promising applications by harnessing various ma...
Recent advances of semiconductor device miniaturization strongly necessitate to take into account th...
The field of quantum computation and simulation has its origins in the early 1980s, when the limitat...
We propose to encode a register of quantum bits in different collective electron spin wave excitatio...
We propose to directly and quantum-coherently couple a superconducting transmon qubit to magnons - t...
We propose and numerically evaluate a protocol to generate an arbitrary quantum state of the magneti...
AbstractThe techniques of microwave quantum optics are applied to collective spin excitations in a m...
Massive mechanical resonators operating at the quantum scale can enable a large variety of applicati...
We propose and numerically evaluate a protocol to generate an arbitrary quantum state of the magneti...
This thesis explores nonlinear couplings in superconducting circuits with the purpose of achieving q...
Superconducting qubits are fabricated "loss-free" electrical circuits on a chip with size features o...
Quantum magnonics is an emerging research field, with great potential for applications in magnon bas...
The detection of magnons and their quantum properties, especially in antiferromagnetic (AFM) materia...
The ability to manipulate entanglement between multiple spatially separated qubits is essential for ...
A hybrid system established by the direct interaction between a magnon mode and a superconducting tr...
Coupled microwave photon-magnon hybrid systems offer promising applications by harnessing various ma...
Recent advances of semiconductor device miniaturization strongly necessitate to take into account th...
The field of quantum computation and simulation has its origins in the early 1980s, when the limitat...
We propose to encode a register of quantum bits in different collective electron spin wave excitatio...