Quantum Dot-Based Parametric Amplifiers

Bibliographic Details
Title: Quantum Dot-Based Parametric Amplifiers
Authors: Cochrane, Laurence, Lundberg, Theodor, Ibberson, David J., Ibberson, Lisa, Hutin, Louis, Bertrand, Benoit, Stelmashenko, Nadia, Robinson, Jason W. A., Vinet, Maud, Seshia, Ashwin A., Gonzalez-Zalba, M. Fernando
Publication Year: 2021
Collection: Condensed Matter
Physics (Other)
Quantum Physics
Subject Terms: Condensed Matter - Mesoscale and Nanoscale Physics, Physics - Applied Physics, Quantum Physics
More Details: Josephson parametric amplifiers (JPAs) approaching quantum-limited noise performance have been instrumental in enabling high fidelity readout of superconducting qubits and, recently, semiconductor quantum dots (QDs). We propose that the quantum capacitance arising in electronic two-level systems (the dual of Josephson inductance) can provide an alternative dissipation-less non-linear element for parametric amplification. We experimentally demonstrate phase-sensitive parametric amplification using a QD-reservoir electron transition in a CMOS nanowire split-gate transistor embedded in a 1.8~GHz superconducting lumped-element microwave cavity, achieving parametric gains of -3 to +3 dB, limited by Sisyphus dissipation. Using a semi-classical model, we find an optimised design within current technological capabilities could achieve gains and bandwidths comparable to JPAs, while providing complementary specifications with respect to integration in semiconductor platforms or operation at higher magnetic fields.
Comment: 7 pages, 4 figures
Document Type: Working Paper
DOI: 10.1103/PhysRevLett.128.197701
Access URL: http://arxiv.org/abs/2111.11825
Accession Number: edsarx.2111.11825
Database: arXiv
More Details
DOI:10.1103/PhysRevLett.128.197701