Spurious mode suppression using micromachined pillars in superconducting quantum devices

ORAL

Abstract

As quantum circuits scale in size, the enclosures used to house them will contain spurious resonant electromagnetic modes detrimental to the circuits unless preventative steps are taken. A standard solution in microwave circuits is the use of through-chip vias. Here we present an alternative that moves the through-chip electrical connection off the substrate and to the enclosure, which suppresses substrate and enclosure modes simultaneously. We achieve this by placing a substrate in a rectangular cavity incorporating an array of micromachined pillars, such that the minimum mode frequency is set by the pillar spacing and not the enclosure dimensions. To accommodate the pillars the substrate is machined. We investigate the compatibility of both CNC and laser machining of holes in silicon with superconducting qubit fabrication. We present proof of principle experiments on enclosures incorporating pillars, and produce simulations with more complex arrangements of pillars in larger-scale devices.

*We acknowledge financial support from the EPSRC (grants EP/M013243/1, EP/N015118/1, EP/R044538/1), Oxford Instruments Nanoscience, Oxford Quantum Circuits Ltd, the Oxford Centre for Applied Superconductivity, the Nakajima Foundation and the Masason Foundation.

Presenters

  • Peter A Spring

    • Condensed Matter Physics, University of Oxford

Authors

  • Peter A Spring

    • Condensed Matter Physics, University of Oxford
  • Joseph Rahamim

    • Condensed Matter Physics, University of Oxford
    • University of Oxford
  • Brian Vlastakis

    • Condensed Matter Physics, University of Oxford
  • Andrew D Patterson

    • Condensed Matter Physics, University of Oxford
    • University of Oxford
  • Takahiro Tsunoda

    • Condensed Matter Physics, University of Oxford
  • Sophia Sosnina

    • Condensed Matter Physics, University of Oxford
  • Martina Esposito

    • Condensed Matter Physics, University of Oxford
    • University of Oxford
  • Salha Jebari

    • University of Oxford
    • Condensed Matter Physics, University of Oxford
  • Kitti Ratter

    • Condensed Matter Physics, University of Oxford
  • Giovanna Tancredi

    • Condensed Matter Physics, University of Oxford
  • Peter Leek

    • Condensed Matter Physics, University of Oxford
    • University of Oxford