HomeQuantum PhysicsBiological Decoherence Timescale Lab (2D)

Biological Decoherence Timescale Lab (2D)

Interactive 2D decoherence-rate simulator: tune temperature, superposition size and environment collision rate to compute the real Joos-Zeh scattering decoherence rate, watch a which-path bridge fade on the exact computed timescale, and read live tau, Gamma and thermal de Broglie wavelength — from an isolated cryogenic qubit to warm, wet cytoplasm.

Quantum Physics2DAdvanced60 FPS📱 Mobile-adapted⇄ 3D version
2d-quantum-healing ↗ Open standalone

How long can a quantum superposition actually survive inside a warm, wet living cell — versus inside a genuinely isolated cryogenic qubit? This 2D simulator computes the real scattering-based decoherence rate (the Joos–Zeh estimate Max Tegmark applied to neurons in 2000) from three sliders — temperature, superposition size Δx, and environment collision rate — and renders it live in a rotatable orbit view: a pair of "which-path" branches around a central quantum system get struck by orbiting environment particles, the coherence bridge between the branches fades exactly on the computed timescale, and a scrolling strip chart traces coherence versus time alongside the ideal exponential. Two one-click presets contrast a genuinely isolated 10mK qubit against 37°C cytoplasm, with live τ, Γ and λ_dB readouts throughout — the same calculation used to evaluate quantum-mind and "quantum healing" claims about macroscopic biological coherence.

⚙ Under the hood

Interactive 2D decoherence-rate simulator: tune temperature, superposition size and environment collision rate to compute the real Joos-Zeh scattering decoherence rate, watch a which-path bridge fade on the exact computed timescale, and read live tau, Gamma and thermal de Broglie wavelength — from an isolated cryogenic qubit to warm, wet cytoplasm.

quantum decoherencequantum biologyTegmarkthermal physicsquantum measurement2D

2D · HTML5 Canvas 2D · 60 FPS target · runs fully client-side, no install

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