Quantum Spintronics And Consciousness: Unlocking The QBIT Theory
The QBIT theory identifies qualia as the building blocks of consciousness, where each micro-consciousness is generated by specific regions of the cerebral cortex. Macro-consciousness arises from the simultaneous emergence of multiple distinct qualia providing a unified subjective experience. Integration of these separate units into a cohesive whole is driven by synchronized activity across cortical landscapes.
Micro-conscious states depend on microtubules as the substrate and the axon initial segment as the critical environmental niche. Microtubules operate as the basic computational units of the brain, functioning as nonlinear transmission lines that amplify and transfer electrical signals. These structures exhibit high sensitivity to stimulation and spontaneously generate electrical oscillations and bursts that mirror neuronal action potentials.
Microtubules possess memristive properties that allow them to store information, process logic, and spike like neurons, as supported by researchers such as Tuszynski and Gutierrez. The QBIT theory further indicates these structures behave as spintronic oscillators, where quantum coherence is maintained through spin degrees of freedom. Spintronic states are predicted to be more stable at physiological temperatures than electronic states, providing a biological mechanism for sustained coherence.
The chiral arrangement of microtubule bundles in the axon initial segment mirrors the room-temperature spintronic effects observed in DNA helices by Göhler. This structural configuration is essential for allowing spin degrees of freedom to persist with slower decoherence than charge-based systems. Validating coherence in these specific populations offers a new framework for mapping transitions from molecular signaling to consciousness.
https://pmc.ncbi.nlm.nih.gov/articles/PMC12542615/