Title :
Fabrication and characterization of superconducting circuit QED devices for quantum computation
Author :
Frunzio, Luigi ; Wallraff, Andreas ; Schuster, David ; Majer, Johannes ; Schoelkopf, Robert
Author_Institution :
Dept. of Appl. Phys., Yale Univ., New Haven, CT, USA
fDate :
6/1/2005 12:00:00 AM
Abstract :
We present fabrication and characterization procedures of devices for circuit quantum electrodynamics (cQED). We have made 3-GHz cavities with quality factors in the range 104-106, which allow access to the strong coupling regime of cQED. The cavities are transmission line resonators made by photolithography. They are coupled to the input and output ports via gap capacitors. An Al-based Cooper pair box is made by e-beam lithography and Dolan bridge double-angle evaporation in superconducting resonators with high quality factor. An important issue is to characterize the quality factor of the resonators. We present an RF-characterization of superconducting resonators as a function of temperature and magnetic field. We have realized different versions of the system with different box-cavity couplings by using different dielectrics and by changing the box geometry. Moreover, the cQED approach can be used as a diagnostic tool of qubit internal losses.
Keywords :
Cooper pairs; Q-factor; aluminium compounds; coplanar waveguides; distributed parameter networks; electron beam lithography; quantum computing; quantum electrodynamics; superconducting cavity resonators; superconducting integrated circuits; 3 GHz; Al; Cooper pair box; Dolan bridge double-angle evaporation; QED devices; box geometry; box-cavity couplings; circuit quantum electrodynamics; distributed parameter circuits; e-beam lithography; gap capacitors; photolithography; quality factors; quantum computation; qubit internal losses; scattering parameters measurement; superconducting cavity resonators; superconducting circuit; superconducting resonators; transmission line resonators; Capacitors; Coupling circuits; Distributed parameter circuits; Electrodynamics; Fabrication; Lithography; Q factor; Quantum computing; Superconducting devices; Superconducting transmission lines; Distributed parameter circuits; Q factor; scattering parameters measurement; superconducting cavity resonators;
Journal_Title :
Applied Superconductivity, IEEE Transactions on
DOI :
10.1109/TASC.2005.850084