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Importance of quantum decoherence in brain processes

Max Tegmark

Abstract

Based on a calculation of neural decoherence rates, we argue that the degrees of freedom of the human brain that relate to cognitive processes should be thought of as a classical rather than quantum system, i.e., that there is nothing fundamentally wrong with the current classical approach to neural network simulations. We find that the decoherence time scales ( approximately 10(-13)-10(-20) s) are typically much shorter than the relevant dynamical time scales ( approximately 10(-3)-10(-1) s), both for regular neuron firing and for kinklike polarization excitations in microtubules. This conclusion disagrees with suggestions by Penrose and others that the brain acts as a quantum computer, and that quantum coherence is related to consciousness in a fundamental way.

Quantum Mechanics and ApplicationsBiofield Effects and BiophysicsPhotoreceptor and optogenetics researchQuantum decoherenceCoherence (philosophical gambling strategy)QuantumPhysicsConsciousnessQuantum mechanicsDegrees of freedom (physics and chemistry)Statistical physicsTheoretical physicsPsychology

MeSH terms

BiometryBiophysicsBrainCognitionHumansMicrotubulesModels, NeurologicalNeuronsQuantum TheoryNeural Networks, ComputerEntropyBiophysical Phenomena
Citations
733
FWCI
10.10
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References
73
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99%
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Cited by
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