We plan to present a technique for implementing a frequency doubler in NbTiN on silicon for operation in a cryogenic environment at IMS 2024. The kinetic inductance of a superconducting coplanar waveguide is exploited for efficient frequency conversion, while the fabrication allows for co-location with other cryogenic circuits. A conversion efficiency greater than 10% is demonstrated at a frequency of 9.87 GHz, offering lower input power requirements and competitive conversion efficiencies relative to other state-of-the-art solutions. This dataset contains information related to this presentation, specifically: (Fig. 2) Simulated conversion efficiency result, (Fig. 4) 2nd and 3rd order harmonic conversion efficiency data with input RF power ranging from (3 to 7), and (Fig. 5) second harmonic power as a function of dc bias current.
About this Dataset
Title | Characterization of a Frequency Converter Based on a Superconducting Coplanar Waveguide, IMS 2024 |
---|---|
Description | We plan to present a technique for implementing a frequency doubler in NbTiN on silicon for operation in a cryogenic environment at IMS 2024. The kinetic inductance of a superconducting coplanar waveguide is exploited for efficient frequency conversion, while the fabrication allows for co-location with other cryogenic circuits. A conversion efficiency greater than 10% is demonstrated at a frequency of 9.87 GHz, offering lower input power requirements and competitive conversion efficiencies relative to other state-of-the-art solutions. This dataset contains information related to this presentation, specifically: (Fig. 2) Simulated conversion efficiency result, (Fig. 4) 2nd and 3rd order harmonic conversion efficiency data with input RF power ranging from (3 to 7), and (Fig. 5) second harmonic power as a function of dc bias current. |
Modified | 2023-12-04 00:00:00 |
Publisher Name | National Institute of Standards and Technology |
Contact | mailto:[email protected] |
Keywords | cryogenic electronics , frequency conversion , kinetic inductance , superconducting coils |
{ "identifier": "ark:\/88434\/mds2-3123", "accessLevel": "public", "contactPoint": { "hasEmail": "mailto:[email protected]", "fn": "Nathan Flowers-Jacobs" }, "programCode": [ "006:045" ], "landingPage": "", "title": "Characterization of a Frequency Converter Based on a Superconducting Coplanar Waveguide, IMS 2024", "description": "We plan to present a technique for implementing a frequency doubler in NbTiN on silicon for operation in a cryogenic environment at IMS 2024. The kinetic inductance of a superconducting coplanar waveguide is exploited for efficient frequency conversion, while the fabrication allows for co-location with other cryogenic circuits. A conversion efficiency greater than 10% is demonstrated at a frequency of 9.87 GHz, offering lower input power requirements and competitive conversion efficiencies relative to other state-of-the-art solutions. This dataset contains information related to this presentation, specifically: (Fig. 2) Simulated conversion efficiency result, (Fig. 4) 2nd and 3rd order harmonic conversion efficiency data with input RF power ranging from (3 to 7), and (Fig. 5) second harmonic power as a function of dc bias current.", "language": [ "en" ], "distribution": [ { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig2.fig", "format": "matlab figure", "description": "(Fig. 2) Simulated conversion efficiency result (matlab figure)", "mediaType": "application\/octet-stream", "title": "(Fig. 2) Simulated conversion efficiency result (matlab figure)" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig4.fig", "format": "matlab figure", "description": "(Fig. 4) 2nd and 3rd order harmonic conversion efficiency data with input RF power ranging from (3 to 7) dBm (matlab figure)", "mediaType": "application\/octet-stream", "title": "(Fig. 4) 2nd and 3rd order harmonic conversion efficiency data with input RF power ranging from (3 to 7) dBm (matlab figure)" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig5.fig", "format": "matlab figure", "description": "(Fig. 5) measured and simulated second harmonic power as a function of dc bias current (matlab figure)", "mediaType": "application\/octet-stream", "title": "(Fig. 5) measured and simulated second harmonic power as a function of dc bias current (matlab figure)" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/README.txt", "format": "text file", "description": "README for this data set, mds2-3123", "mediaType": "text\/plain", "title": "README" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig5_Sim.txt", "mediaType": "text\/plain", "title": "Fig5_Sim" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig4_Top.txt", "mediaType": "text\/plain", "title": "Fig4_Top" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig4_Bottom.txt", "mediaType": "text\/plain", "title": "Fig4_Bottom" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig2.txt", "mediaType": "text\/plain", "title": "Fig2" }, { "downloadURL": "https:\/\/data.nist.gov\/od\/ds\/mds2-3123\/Fig5_Measured.txt", "mediaType": "text\/plain", "title": "Fig5_Measured" } ], "bureauCode": [ "006:55" ], "modified": "2023-12-04 00:00:00", "publisher": { "@type": "org:Organization", "name": "National Institute of Standards and Technology" }, "theme": [ "Electronics:Superconducting electronics" ], "keyword": [ "cryogenic electronics", "frequency conversion", "kinetic inductance", "superconducting coils" ] }