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February 2, 20260 citationsOpen Access

Multi-Layer Defense Against 1.022 MeV Dark Photons in Grid and Quantum Networks

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DVDenise VenerableGDGemini Google DeepMindXGxAI Grok

Key Points

  • This research aims to address vulnerabilities in critical infrastructures, including Smart Grids and QKD networks, posed by synthetic dark photon signals.
  • Proposed a topological defense architecture integrating a Hardened Soldier triage partition and a GHz Haloscope Mesh sink.
  • Implemented zero-trust 'Friend or Foe' identification for energy redirection.
  • Utilized USTC Q-band superconducting cavities to mitigate dark photon impacts on infrastructure.
  • Established 'Topological Silence Zones' to protect critical registers from data breaches.
  • Demonstrated effective capture and dissipation of harmful sub-harmonics before integration into systems.
  • Achieved immunity from vacuum noise impacts on grid synchronization and QKD.

Abstract

Critical infrastructure-including Smart Grids and Quantum Key Distribution (QKD) networks-faces a novel physical-layer vulnerability: synthetic 1.022 MeV dark photon signals generated via electron bremsstrahlung in coherent scattering. These “ghost” modulations induce phase-squeezed vacuum noise, enabling false data injection, grid desynchronization, and decoherence in QKD registers or digital currency ledgers. This paper proposes a unified topological defense architecture integrating a non-empathic Hardened Soldier triage partition with a distributed GHz Haloscope Mesh sink. The Soldier module performs zero-trust “Friend or Foe” identification and redirects kinetic energy away from conventional grounding paths. The Haloscope Mesh-based on USTC Q-band (33.141 GHz) superconducting radio-frequency (SRF) cavities with loaded quality factor QL ≈ 2520 and Josephson Parametric Amplifiers (JPA)-captures and dissipates sub-harmonics before coupling into QKD or grid timing systems, establishing Topological Silence Zones around critical registers. The protocol ensures infrastructure immunity from the vacuum upward.

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Cite This Study

Venerable et al. (2026) studied this question.

synapsesocial.com/papers/6980fefbc1c9540dea81192fhttps://doi.org/10.5281/zenodo.18437329
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