We demonstrate the realization of a hybrid solid-state quantum device, in which a semiconductor double quantum dot is dipole coupled to the microwave field of a superconducting coplanar waveguide resonator. The double dot charge stability diagram extracted from measurements of the amplitude and phase of a microwave tone transmitted through the resonator is in good agreement with that obtained from transport measurements. Both the observed frequency shift and linewidth broadening of the resonator are explained considering the double dot as a charge qubit coupled with a strength of several tens of MHz to the resonator
Within the last decade circuit quantum electrodynamics (circuit QED) [1] has proven to be an excelle...
We present a unique design and fabrication process for a lateral, gate-confined double quantum dot i...
The realization of a coherent interface between distant charge or spin qubits in semiconductor quant...
We demonstrate the realization of a hybrid solid-state quantum device, in which a semiconductor doub...
By employing a micrometer precision mechanical transfer technique, we embed individual InSb nanowire...
Semiconductor quantum dots in silicon demonstrate exceptionally long spin lifetimes as qubits and ar...
Recent progress in nanotechnology allows to engineer hybrid mesoscopic devices comprising on chip an...
We present microwave frequency measurements of the dynamic admittance of a quantum dot tunnel-couple...
Coupling double-quantum-dot circuits to microwave cavities provides a powerful means to control, cou...
The strong coupling limit of cavity quantum electrodynamics (QED) implies the capability of a matter...
Semiconductor quantum dots in which electrons or holes are isolated via electrostatic potentials gen...
Quantum transduction between the microwave and optical domains is an outstanding challenge for long-...
Single photons and single electrons can be confined spatially in a solid-state device by using a mil...
International audienceWe demonstrate a hybrid architecture consisting of a quantum dot circuit coupl...
We study the interaction of the charge states of a superconducting double dot, comprising two superc...
Within the last decade circuit quantum electrodynamics (circuit QED) [1] has proven to be an excelle...
We present a unique design and fabrication process for a lateral, gate-confined double quantum dot i...
The realization of a coherent interface between distant charge or spin qubits in semiconductor quant...
We demonstrate the realization of a hybrid solid-state quantum device, in which a semiconductor doub...
By employing a micrometer precision mechanical transfer technique, we embed individual InSb nanowire...
Semiconductor quantum dots in silicon demonstrate exceptionally long spin lifetimes as qubits and ar...
Recent progress in nanotechnology allows to engineer hybrid mesoscopic devices comprising on chip an...
We present microwave frequency measurements of the dynamic admittance of a quantum dot tunnel-couple...
Coupling double-quantum-dot circuits to microwave cavities provides a powerful means to control, cou...
The strong coupling limit of cavity quantum electrodynamics (QED) implies the capability of a matter...
Semiconductor quantum dots in which electrons or holes are isolated via electrostatic potentials gen...
Quantum transduction between the microwave and optical domains is an outstanding challenge for long-...
Single photons and single electrons can be confined spatially in a solid-state device by using a mil...
International audienceWe demonstrate a hybrid architecture consisting of a quantum dot circuit coupl...
We study the interaction of the charge states of a superconducting double dot, comprising two superc...
Within the last decade circuit quantum electrodynamics (circuit QED) [1] has proven to be an excelle...
We present a unique design and fabrication process for a lateral, gate-confined double quantum dot i...
The realization of a coherent interface between distant charge or spin qubits in semiconductor quant...