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February 23, 2026Progress in Biophysics and Molecular Biology2 citationsOpen Access

Biofield in Neural Communication: A Review and Conceptual Framework

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PPPavel Pospı́šilAPAnkush Prasad

Key Points

  • This research aims to explore the potential role of the brain's biofield in neural communication, particularly through biophotons.
  • Review existing literature on biofields and neural communication.
  • Examine theoretical frameworks, including quantum field theory.
  • Discuss limitations of current experimental evidence regarding biophoton signaling.
  • Neurons emit biophotons that may mediate rapid neural communication.
  • Quantum properties of photons, such as entanglement, could underlie biofield communication.
  • Experimental evidence for biophoton-mediated communication remains limited, highlighting a need for more studies.

Abstract

The brain biofield, which represents the electromagnetic field generated by neurons, is hypothesized to play a role in neural communication, potentially complementing well-established, relatively slow chemical signaling and relatively fast conventional electrical signaling. Evidence was recently provided that neurons, and even entire nervous tissue, emit ultraweak photons known as biophotons. From the perspective of quantum field theory, field particles, such as photons, act as universal mediators of interactions between matter particles, including electrons. When considering such a principle extended across scales from atoms to biomolecules to cells, or even to whole tissues, biophotons might mediate ultrafast interactions between neurons occurring at the speed of light. Specific quantum properties of photons, such as superposition, coherence, and entanglement, could provide a physical basis for biophoton-mediated communication. However, neither the formation of such a quantum state associated with information coding nor its detection associated with decoding has yet been experimentally demonstrated in neural tissue. Furthermore, the stable propagation of a quantum state is severely limited by inherent biological noise, including thermal, chemical, and structural fluctuations, which rapidly destabilize the quantum state in neural tissue. Thus, biofield-mediated communication in the brain remains largely hypothetical and requires substantial experimental investigation before its feasibility can be assessed. Although direct experimental evidence remains limited, biophoton-mediated signaling represents a promising frontier for understanding neural communication within a quantum framework. Recent advances in biophoton detection might open new opportunities to investigate the role of biophotons in neural communication.

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Cite This Study

Pospı́šil et al. (2026) studied this question.

synapsesocial.com/papers/699bee551c6c6bad5397fe8ahttps://doi.org/10.1016/j.pbiomolbio.2026.02.005
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