paper

Thermocompression Bonding Technology for Multilayer Superconducting Quantum Circuits

arXiv:1705.02435 · doi:10.1063/1.5003169

Abstract

Extensible quantum computing architectures require a large array of quantum devices operating with low error rates. A quantum processor based on superconducting quantum bits can be scaled up by stacking microchips that each perform different computational functions. In this article, we experimentally demonstrate a thermocompression bonding technology that utilizes indium films as a welding agent to attach pairs of lithographically-patterned chips. We perform chip-to-chip indium bonding in vacuum at with indium film thicknesses of . We characterize the dc and microwave performance of bonded devices at room and cryogenic temperatures. At , we find a dc bond resistance of . Additionally, we show minimal microwave reflections and good transmission up to in a tunnel-capped, bonded device as compared to a similar uncapped device. As a proof of concept, we fabricate and measure a set of tunnel-capped superconducting resonators, demonstrating that our bonding technology can be used in quantum computing applications.

5 pages main, 3 figures and 1 table; 5 pages supplementary, 4 figures

Thermocompression Bonding Technology for Multilayer Superconducting Quantum Circuits · wovepaper