We study the slowing, storing, and releasing of microwave pulses in a superconducting circuit composed of two coplanar waveguide resonators and a superconducting transmon-type qubit. The quantum interference analogy to electromagnetically induced transparency is created in two coupled resonators. By tuning the resonance frequency of the transmon, we dynamically tune the effective coupling between the resonators. Via the modulation of the coupling, we show the tunable true time delay of microwave pulses at the single-photon level. We also store the microwave field in a high-Q resonator and release the signal from it to the output port. Our scheme promises applications in both quantum information processing and classical wireless communicatio...
In this thesis, measurements on superconducting electrical circuits that exhibit quantum mechanical ...
Superconducting quantum bits (qubits) are a leading candidate towards realizing a processor that is ...
Quantum transduction between the microwave and optical domains is an outstanding challenge for long-...
We present a system which allows to tune the coupling between a superconducting resonator and a tran...
We have fabricated and characterized tunable superconducting transmission line resonators. To change...
PhD Thesis: Superconducting circuit quantum electrodynamics (QED) has developed into a powerful pla...
Photons are fundamental excitations of electromagnetic fields and can be captured in cavities. For a...
The rapid progress in quantum information processing leads to a rising demand for devices to control...
Under the terms of the Creative Commons Attribution License 3.0 (CC-BY).In this work we show that a ...
The quantum behavior of superconducting qubits coupled to resonators is very similar to that of atom...
Superconducting circuits and devices have unique properties that make them interesting from both the...
Circuit quantum electrodynamics (cQED) is a prominent platform for quantum information processing, i...
Waveguide quantum electrodynamics (QED) refers to the study of quantum emitters (qubits) coupled to ...
Superconducting microwave circuits provide a versatile platform for studying quantum optics with art...
We demonstrate the full functionality of a circuit that generates single microwave photons on demand...
In this thesis, measurements on superconducting electrical circuits that exhibit quantum mechanical ...
Superconducting quantum bits (qubits) are a leading candidate towards realizing a processor that is ...
Quantum transduction between the microwave and optical domains is an outstanding challenge for long-...
We present a system which allows to tune the coupling between a superconducting resonator and a tran...
We have fabricated and characterized tunable superconducting transmission line resonators. To change...
PhD Thesis: Superconducting circuit quantum electrodynamics (QED) has developed into a powerful pla...
Photons are fundamental excitations of electromagnetic fields and can be captured in cavities. For a...
The rapid progress in quantum information processing leads to a rising demand for devices to control...
Under the terms of the Creative Commons Attribution License 3.0 (CC-BY).In this work we show that a ...
The quantum behavior of superconducting qubits coupled to resonators is very similar to that of atom...
Superconducting circuits and devices have unique properties that make them interesting from both the...
Circuit quantum electrodynamics (cQED) is a prominent platform for quantum information processing, i...
Waveguide quantum electrodynamics (QED) refers to the study of quantum emitters (qubits) coupled to ...
Superconducting microwave circuits provide a versatile platform for studying quantum optics with art...
We demonstrate the full functionality of a circuit that generates single microwave photons on demand...
In this thesis, measurements on superconducting electrical circuits that exhibit quantum mechanical ...
Superconducting quantum bits (qubits) are a leading candidate towards realizing a processor that is ...
Quantum transduction between the microwave and optical domains is an outstanding challenge for long-...