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April 22, 20260 citationsOpen Access

Fundamental Coherence Limits in Google and IBM Quantum Architectures via ψ-field Rheology

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ASAlexander Shlyapik

Key Points

  • The aim is to theoretically explore the fundamental limits of quantum coherence in superconducting qubit architectures.
  • Utilized the Fermionic Universe Hypothesis to analyze decoherence mechanisms.
  • Establish a relationship between qubit lifetime plateau and viscous friction limits.
  • Proposed an experimental protocol for achieving local phase transitions at specific energy thresholds.
  • Identified a coherence plateau in qubit lifetimes of 50–150 µs corresponding to viscous friction.
  • Demonstrated that decoherence arises from excitation energy dissipation into a viscous vacuum.
  • Outlined a method to potentially enhance qubit lifetimes through superfluid transitions.

Abstract

This paper presents a theoretical substantiation of the fundamental limit of quantum coherence in superconducting qubit architectures (exemplified by Google Sycamore and IBM Falcon chips). Within the framework of the Fermionic Universe Hypothesis (FUH), decoherence is treated not as a result of material technological imperfections (TLS model), but as the dissipation of excitation energy into a viscous vacuum condensate (η = 1. 2 × 10^−15 Pa·s). It is established that the observed ”plateau” in qubit lifetimes (T1 ≈ 50–150 µs) corresponds to the calculated limit of viscous friction. An experimental protocol is proposed to overcome this barrier by initiating a local phase transition of the vacuum into a superfluid state upon reaching the injection energy threshold E > 7. 76 keV (the Shlyapik effect).

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Cite This Study

Alexander Shlyapik (2026) studied this question.

synapsesocial.com/papers/69e867136e0dea528ddeb6c0https://doi.org/10.5281/zenodo.19667917
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