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June 27, 2026Open Access

Quantum wake conductivity

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Authors

MAMohammd Raeed Alanssari

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Overview

Randomized trial explores quantum phase transitions in solid-state systems, suggesting new empirical predictability.

Key Points

  • This work aims to develop a deterministic mechanical model for solid-state transport and phase transitions, moving away from traditional probabilistic approaches.
  • Introduced a fluid-dynamic framework for quantum and relativistic phenomena.
  • Utilized the Jump-and-Residence duty cycle to reconcile Fermi velocities and supercavitation conditions.
  • Reclassified quantum tunneling and superconductivity within a unified framework of fluid dynamics.
  • Demonstrated a new model yielding testable predictions for critical temperature (T_c) phase transitions.
  • Established a clear kinematic threshold for hydrodynamic decay mechanisms.
  • Outlined empirical predictions such as hyper-velocity jetting at superconducting junction interfaces.

Cite This Study

Mohammd Raeed Alanssari (2026) studied this question.

synapsesocial.com/papers/6a3f68a3aea7db3c1953f9bchttps://doi.org/10.5281/zenodo.20845089
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