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A stress-induced source of phonon bursts and quasiparticle poisoning. | LitMetric

AI Article Synopsis

  • Superconducting qubits can get messed up by tiny energy sources that break apart the pairs of particles needed for superconductivity, making a problem known as "quasiparticle poisoning."
  • Researchers found that a silicon crystal glued to its holder has way more low-energy sound events (called phonons) compared to a similar crystal that wasn't glued, which could affect how well these systems work.
  • The extra phonon events in the glued crystal get less frequent over time, suggesting that the stress from the glue is causing these disturbances and may be impacting other scientific devices too.

Article Abstract

The performance of superconducting qubits is degraded by a poorly characterized set of energy sources breaking the Cooper pairs responsible for superconductivity, creating a condition often called "quasiparticle poisoning". Both superconducting qubits and low threshold dark matter calorimeters have observed excess bursts of quasiparticles or phonons that decrease in rate with time. Here, we show that a silicon crystal glued to its holder exhibits a rate of low-energy phonon events that is more than two orders of magnitude larger than in a functionally identical crystal suspended from its holder in a low-stress state. The excess phonon event rate in the glued crystal decreases with time since cooldown, consistent with a source of phonon bursts which contributes to quasiparticle poisoning in quantum circuits and the low-energy events observed in cryogenic calorimeters. We argue that relaxation of thermally induced stress between the glue and crystal is the source of these events.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11292027PMC
http://dx.doi.org/10.1038/s41467-024-50173-8DOI Listing

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