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Robotic Sensing and Stimuli Provision for Guided Plant Growth
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The physical principles underpinning self-organization in plants.
Philip Turner1, Laurent Nottale2
1Edinburgh Napier University, 10 Colinton Road, Edinburgh, EH10 5DT, United Kingdom.
Progress in Biophysics and Molecular Biology
|September 19, 2016
Summary
A new theory explains plant structure emergence using ionization levels and quantum potentials. This framework links inorganic growth to genetic code, revealing macroscopic quantum processes in biological systems.
Area of Science:
- Biophysics
- Quantum Biology
- Structural Biology
Background:
- Plant structure arises from complex interactions.
- Existing theories do not fully explain macro-scale organization from quantum principles.
Purpose of the Study:
- To present a new theory on the emergence of plant structure.
- To link inorganic growth to genetic code and quantum mechanics.
- To explain macroscopic quantum processes in biological systems.
Main Methods:
- Laboratory-based growth of plant-like structures from inorganic materials.
- Theoretical modeling of charge-induced quantum potentials and bosonic fields.
- Analysis of quantum phenomena in molecular assembly and biological evolution.
Main Results:
- Ionization levels dictate plant structure across scales.
- Macroscopic quantum potentials emerge from merged charge-induced potentials.
- Quantum phenomena like self-organization and decoherence are observed.
- A Schrödinger-like equation models evolutionary time, bifurcation, and duplication.
Conclusions:
- The theory provides a framework for understanding structural biology and evolution.
- Macroscopic quantum potentials exhibit quintessence-like behavior.
- Environmental conditions influence the selection of emergent structures.
- This model applies to both prebiotic emergence and extant plant diversity.
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