Published February 6, 2026
| Version v1
Preprint
Open
RENASCENT-Q: Extension of the TET–CVTL Theoretical Framework – Numerical Evidence for Retrocausal Negentropic Effects, Topological Lattice Stabilization, and Convergence Dynamics in Embodied Quantum Systems
Description
This repository archives the preprint and supporting numerical resources for RENASCENT-Q, an advanced extension of the TET–CVTL theoretical framework. RENASCENT-Q investigates time-symmetric quantum dynamics in open systems, with a focus on retrocausal mechanisms capable of inducing local negentropic effects (damping parameter β ≈ φ⁻² ≈ 0.382) that counteract standard decoherence.Through custom Lindblad master equation integrations (using QuTiP for quantum simulations), the work demonstrates:
- Convergence of concurrence toward maximal entanglement (C → 1) and reduction of von Neumann entropy (S → 0) in two-qubit embodied systems under weak retrocausal feedback.
- Topological protection and lattice stabilization via anyon braiding (Fibonacci/Ising categories), Majorana zero modes (MZMs), and toric code thresholds.
- Scaling behavior of weak values in the two-state vector formalism (TSVF), showing power-law amplification beyond classical bounds.
- Ginzburg-Landau vortex dynamics and microtubule-nanowire interface models as potential substrates for room-temperature quantum coherence.
- Compiled preprint PDF
- Full LaTeX source (.tex) with embedded simulation code listings
- Bibliography (BibTeX)
- All generated figures (concurrence trajectories, entropic plots, vortex snapshots, braiding schematics, weak-value scaling, MT-nanowire structures, etc.)
- Citation metadata (CITATION.cff) and CC BY-NC-ND 4.0 license
Tetcollective.org
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Testo legale completo: https://creativecommons.org/licenses/by-nc-nd/4.0/
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RENASCENT_Q__Extension_of_the_TET_CVTL_Theoretical_Framework___Numerical_Evidence.pdf
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Additional details
Related works
- Is supplement to
- Dataset: https://github.com/TETcollective/RENASCENT-Q (URL)
- Preprint: 10.5281/zenodo.18465546 (DOI)
- Preprint: 10.5281/zenodo.18368913 (DOI)
- Preprint: 10.5281/zenodo.18329587 (DOI)
- Preprint: 10.5281/zenodo.18389574 (DOI)
References
- Quantum Biology
- Open Science